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Institute
- Institut für Physikalische und Theoretische Chemie (223) (remove)
Sonstige beteiligte Institutionen
- Arizona State University, Tempe, Arizona, USA (1)
- Center for Nanosystems Chemistry (CNC), Universität Würzburg (1)
- Center for Nanosystems Chemistry (CNC), Universität Würzburg, Am Hubland, 97074 Würzburg, Germany (1)
- Center of Excellence for Science and Technology - Integration of Mediterranean region (STIM), Faculty of Science, University of Split, Poljička cesta 35, 2100 Split, Croatia (1)
- Charles University, Faculty of Mathematics and Physics, Ke Karlovu 5, 121 16 Prague, Czech Republic (1)
- Departamento de Química, Facultad de Ciencias, Universidad Autónoma de Madrid, 28049 Madrid, Spain (1)
- Department of Chemistry, Humboldt Universität zu Berlin, Brook-Taylor-Strasse 2, 12489 Berlin, Germany (1)
- Department of Chemistry, Sungkyunkwan University, 440-746 Suwon, Republic of Korea (1)
- Fachbereich Physik, Universität Konstanz, D-78464 Konstanz, Germany (1)
- Fakultät für Physik, Universität Bielefeld (1)
ResearcherID
- B-1911-2015 (1)
- M-1240-2017 (1)
- N-3741-2015 (1)
100-kHz shot-to-shot broadband data acquisition for high-repetition-rate pump–probe spectroscopy
(2014)
Shot-to-shot broadband detection is common in ultrafast pump–probe spectroscopy. Taking advantage of the intensity correlation of subsequent laser pulses improves the signal-to-noise ratio. Finite data readout times of CCD chips in the employed spectrometer and the maximum available speed of mechanical pump-beam choppers typically limit this approach to lasers with repetition rates of a few kHz. For high-repetition (≥ 100 kHz) systems, one typically averages over a larger number of laser shots leading to inferior signal-to-noise ratios or longer measurement times. Here we demonstrate broadband shot-to-shot detection in transient absorption spectroscopy with a 100-kHz femtosecond laser system. This is made possible using a home-built high-speed chopper with external laser synchronization and a fast CCD line camera. Shot-to-shot detection can reduce the data acquisition time by two orders of magnitude compared to few-kHz lasers while keeping the same signal-to-noise ratio.
A comparative study is carried out on two spectroscopic techniques employed to detect ultrafast absorption changes in the mid-infrared spectral range, namely direct multichannel detection via HgCdTe (MCT) photodiode arrays and the newly established technique of chirped-pulse upconversion (CPU). Whereas both methods are meanwhile individually used in a routine manner, we directly juxtapose their applicability in femtosecond pump-probe experiments based on 1 kHz shot-to-shot data acquisition. Additionally, we examine different phase-matching conditions in the CPU scheme for a given mid-infrared spectrum, thereby simultaneously detecting signals which are separated by more than 200 cm−1.
Time-resolved optical spectroscopy has become an important tool to investigate the dynamics of quantum mechanical processes in matter. In typical applications, a first “pump” pulse excites the system under investigation from the thermal equilibrium to an excited state, and a second variable time-delayed “probe” pulse then maps the dynamics of the excited system. Although advanced nonlinear techniques have been developed to investigate, e.g., coherent quantum effects, all of these techniques are limited in their spatial resolution. The laser focus diameter has a lower bound given by Abbe’s diffraction limit, which is roughly half the optical excitation wavelength—corresponding to about 400nm in the presented experiments. In the time-resolved experiments that have been suggested so far, averaging over the sample volume within this focus cannot be avoided. In this thesis, two approaches were developed to overcome the diffraction limit in optical spectroscopy and to enable the investigation of coherent processes on the nanoscale. In the first approach, analytic solutions were found to calculate optimal polarizationshaped laser pulses that provide optical near-field pump–probe pulse sequences in the vicinity of a nanostructure. These near-field pulse sequences were designed to allow excitation of a quantum system at one specific position at a certain time and probing at a different position at a later time. In the second approach, the concept of coherent two-dimensional (2D) spectroscopy, which has had great impact on the investigation of coherent quantum effects in recent years, was combined with photoemission electron microscopy, which yields a spatial resolution well below the optical diffraction limit. Using the analytic solutions, optical near fields were investigated in terms of spectroscopic applications. Near fields that are excited with polarization-shaped femtosecond laser pulses in the vicinity of appropriate nanostructures feature two properties that are especially interesting in the view of spectroscopic applications: On the one hand, control of the spatial distribution of the optical fields is achieved on the order of nanometers. On the other hand, the temporal evolution of these fields can be adjusted on the order of femtoseconds. In this thesis, solutions were found to calculate the optimal polarizationshaped laser pulses that control the near field in a general manner. The main idea to achieve this deterministic control was to disentangle the spatial and temporal near-field control. First, the spatial distribution of the optical near field was controlled by assigning the correct state of polarization for each frequency within the polarization-shaped laser pulse independently. The remaining total phase—not employed for spatial control—was then used for temporal near-field compression, which, in experimental applications, would lead to an enhancement of the nonlinear signal at the respective location. In contrast to the use of optical near fields, where pump–probe sequences themselves are localized below the diffraction limit and the detection does not have to provide the spatial resolution, a different approach was suggested in this thesis to gain spectroscopic information on the nanoscale. The new method was termed “Coherent two-dimensional (2D) nanoscopy” and transfers the concept of “conventional” coherent 2D spectroscopy to photoemission electron microscopy. The pulse sequences used for the investigation of quantum systems in this method are still limited by diffraction. However, the new key concept is to detect locally generated photoelectrons instead of optical signals. This yields a spatial resolution that is well below the optical diffraction limit. In “conventional” 2D spectroscopy a triple-pulse sequence initiates a four wave mixing process that creates a coherence. In a quantum mechanical process, this coherence is converted into a population by emission of an electric field, which is measured in the experiment. Contrarily, in the developed 2D nanoscopy, four-wave mixing is initiated by a quadruple-pulse sequence, which leaves the quantum system in an electronic population. This electronic population carries coherent information about the investigated quantum system and can be mapped with a spatial resolution down to a few nanometers given by the spatial resolution of the photoemission electron microscope. Hence, 2D nanoscopy can be considered a generalization of time-resolved photoemission experiments. In the future, it may be of similar beneficial value for the field of photoemission research as “conventional” 2D spectroscopy has proven to be for optical spectroscopy and nuclear magnetic resonance experiments. In a first experimental implementation of coherent 2D nanoscopy coherent processes on a corrugated silver surface were measured and unexpected long coherence lifetimes could be determined.
Die ersten Beispiele für Lewis-Basen-Addukte des Stammboraphosphaketens H\(_{2}\)B-PCO und ihre cyclischen Dimere wurden hergestellt. Eines dieser Addukte zeigt unter milden Bedingungen eine Decarbonylierung und anschließende Insertion des Phosphinidens in die B-C-Bindung eines Borols, was in der Bildung sehr seltener Beispiele für 1,2-Phosphaborinine, B,P-Isostere von Benzol, resultiert. Die starken Donoreigenschaften dieser 1,2-Phosphaborinine wurden durch die Synthese ihrer π-Komplexe mit Metallen der Gruppe 6 bestätigt.
We have investigated the photoionization of ammonia borane (AB) and determined adiabatic ionization energy to be 9.26±0.03 eV for the X\(^{+}\) \(^{2}\)E←X \(^{1}\)A\(_{1}\) transition. Although the threshold photoelectron spectrum appears at first glance to be similar to the one of the isosteric ethane, the electronic situation differs markedly, due to different orbital energies. In addition, an appearance energy AE\(_{0K}\)-(NH\(_{3}\)BH\(_{3}\), NH\(_{3}\)BH\(_{2}\)\(^{+}\))= 10.00±0.03 eV has been determined, corresponding to the loss of a hydrogen atom at the BH\(_{3}\)-site. From the data, a 0 K bond dissociation energy for the B−H bond in the cation of 71.5±3 kJ mol\(^{-1}\) was derived, whereas the one in the neutral compound has been estimated to be 419±10 kJ mol\(^{-1}\).
Analyse der chemischen Reaktionen ungesättigter Verbindungen mit FEL- und Synchrotronstrahlung
(2013)
Brilliante Strahlungsquellen werden heute vielfach in der Forschung eingesetzt um Kristallstrukturen, Oberflächeneigenschaften oder Reaktionen zu untersuchen. Als Strahlungsquellen werden dafür bevorzugt Freie Elektronenlaser (FEL) oder Synchrotrons eingesetzt, da sie über weite Bereiche durchstimmbar sind und einen hohen Photonenfluss bereitstellen. Im Rahmen der vorliegenden Dissertation werden beide Lichtquellen verwendet um einerseits Isomere von Kohlenwasserstoffradikalen zu identifizieren und andererseits das Verhalten von Borylen und ungesättigten Verbindungen bei Photoionisation zu dokumentieren. Als erstes Experiment am FEL wurde ein IR-Spektrum von gasförmigen Allylradikalen aufgenommen. Das Allyl war ein Testlauf, da es als Kohlenwasserstoffradikal mit einer kleinen Dipolmomentänderung ein gutes Beispiel für ähnliche Verbindungen ist. Trotz der kleinen Änderung des Dipolmoments und der geringen Teilchendichte der Radikale in der Gasphase konnte ein gutes IR-Spektrum mit der IR-UV-Doppelresonanzmethode aufgenommen werden und die beobachteten Banden mit der Literatur zugeordnet werden. Das 3-Trifluoromethyl-3-Phenyl-carben (TFPC) wurde pyrolytisch aus 3-Trifluoromethyl-3-Phenyl-diazirin erzeugt. Dabei kam es beim Großteil der Carbene zu einer Umlagerung zu Trifluorstyrol. Neben dem Hauptprodukt Trifluorstyrol wurde das Triplett TFPC als Nebenprodukt identifiziert. Zusätzlich wurden die Isomerisierungsbarrieren für den Triplett- und Singulett-Übergangszustand berechnet. Die Radikale 1-Phenylpropargyl und 3-Phenylpropargyl sind anhand ihrer IR-Spektren unterscheidbar und lagern sich nicht ineinander oder in Indenyl um. Ausgehend von beiden Radikalen bilden sich die identischen Dimerisierungsprodukte im Massenkanal m/z = 230 (p-Terphenyl) und 228 (1-Phenylethinylnaphthalin (1PEN)). Außergewöhnlich war die Exklusivität dieser Produkte. Somit müssen deren Reaktionsmechanismen kinetisch viel schneller sein. Die Massen m/z = 230 und 228 waren bereits aus einer massenspektrometrischen Studie ausgehend von Benzol und Ethin bekannt, in der ihre Struktur jedoch nicht geklärt wurde. Somit müssen die gefundenen Dimerisierungsprodukte p-Terphenyl und 1PEN wichtige Intermediate bei der Entstehung von polyzyklischen aromatischen Kohlenwasserstoffen (PAK) und Ruß sein. Von gasförmigen NTCDA wurde mittels der TPEPICO-Methode am Synchrotron Schwellenphotoelektronenspektren aufgenommen. Dabei konnte die adiabatische Ionisierungsenergie (IE(ad)) zu 9.66 eV bestimmt werden. Weiterhin wurden noch fünf angeregte Zustände beobachtet, die mittels quantenmechanischer Berechnungen zugeordnet wurden. Es wurde die Photoionisation des Cycloheptatrienradikals (Tropyl) untersucht. Dabei wurde die erste Bande bei 6.23 eV der IE(ad) zugeordnet. Mit einer Franck-Condon Simulation wurden die beiden Schwingungsprogressionen einer CC-Streckschwingung (ν16+) und einer Kombination aus einer Ringatmung (ν2+) und ν16+ zugeordnet. Der erste Triplett- und Singulettzustand des angeregten Tropylkations konnte in Übereinstimmung mit der Literatur zugeordnet werden. Eine Schulter bei 9.85 eV und die intensivste Bande bei 11.6 eV konnten nicht eindeutig interpretiert werden. Neben dem Tropyl erscheint bei etwa 10.55 eV sein dissoziatives Zersetzungsprodukt, das Cyclopentadienylkation. Die IE(ad) des Borylenkomplex [(CO)5CrBN(SiMe3)2] wurde zu 7.1 eV bestimmt. Mit steigender Photonenenergie wurden alle CO-Liganden sequenziell abgespalten, während der Borligand auch bei 15 eV noch nicht dissoziierte. Von den fünf abgespaltenen CO-Liganden konnte die Auftrittsenergie bei 0 K unter Berücksichtigung der kinetischen Verschiebung gefittet werden. Durch einen einfachen thermodynamischen Zyklus wurden aus den Auftrittsenergien der Kationen die Bindungsenergien berechnet. Dabei zeigte sich, dass die zweite Bindungsenergie im Kation erheblich stärker ist als die erste. Dies deutet einen starken trans-Effekt des Borliganden an. In der Dissertation wurden die adiabatische Ionisierungsenergie der Moleküle sowie die Auftrittsenergien der Fragmente und die Bindungsenergien bestimmt. Zudem konnten Isomere anhand ihrer IR-Spektren unterschieden und ihre Dimerisierungsprodukte identifiziert werden. Damit wurden mit p-Terphenyl und 1PEN zwei weitere bedeutende Intermediate im Bildungsmechanismus von Ruß strukturell aufgeklärt. Die Beteiligung dieser Dimerisierungsprodukte am Bildungsmechanismus der PAK initiiert zukünftige Fragen. Was geschieht z.B. mit p-Terphenyl und 1PEN nach ihrer Bildung? Reagieren sie chemisch zu größeren Molekülen oder setzt bei ihnen bereits die Akkumulation zu Partikeln ein? Zusätzlich ist die Frage, ob Phenylpropargyl aus der Reaktion von Phenyl- und Propargylradikalen entsteht noch offen. Die erzielten Resultate haben einen wichtigen Schritt im Bildungsmechanismus der PAK identifiziert und damit die Grundlage für zukünftige Experimente gelegt.
Gegenstand dieser Arbeit ist die Untersuchung von gespeicherten Nanopartikeln mit weicher Röntgenstrahlung. Dafür wurde eine neue Apparatur aufgebaut. In dieser befindet sich ein dreidimensionaler elektrodynamischer Quadrupolspeicher, mit dem die positiv geladenen Nanopartikel berührungsfrei und ortsfest gespeichert werden. Mit Hilfe eines Streulichtnachweises werden die Eigenbewegungen der Partikel gemessen und daraus das Ladungs- zu Masseverhältnis ermittelt. Durch gezielte Umladung können die absolute Ladung und die Masse der Partikel mit hoher Genauigkeit bestimmt werden. Die gespeicherten Partikel wurden mit Synchrotronstrahlung am Elektronenspeicherring BESSY II untersucht. Bei niedrig geladenen Partikeln wurden Aufladungsexperimente mit variabler Photonenenergie durchgeführt. Dabei kann die Emission von einzelnen Elektronen beobachtet werden. Die totale Sekundärelektronenausbeute wurde für verschiedene Photonenenergien ermittelt. Sie gleicht den Werten, die durch Messungen mit Elektronenbeschuss bekannt sind. Die Partikel wurden weiterhin bis zum maximal erreichbaren Ladungszustand aufgeladen. Dieser Gleichgewichtszustand liegt unterhalb der theoretischen Erwartungen. Bei den hochgeladenen Partikeln wurden nach Abschalten der Synchrotronstrahlung Entladevorgänge beobachtet, die für das verminderte Ladungsgleichgewicht verantwortlich sind. Die Entladung wird als Ionen-Feldemission interpretiert, möglicherweise hervorgerufen durch den elektrischen Durchschlag im Teilchenmaterial. Das Aufladungsverhalten der Partikel bei verschiedenen Ladungszuständen wurde mit Hilfe von Messungen an der O 1s-Kante untersucht. Bei niedrigen Ladungszuständen liefert der Ladestrom die bekannten Röntgenabsorbtionsstrukturen von Siliziumdioxid. Stark geladene Partikel werden dagegen vor allem im Bereich der resonanten O 1s-Anregung durch schnelle Augerelektronen aufgeladen, während Photoelektronen aus dem O 1s-Kontinuum nicht mehr zur Aufladung beitragen. Deren kinetische Energie ist zu gering, um dem Coulombfeld des Partikels zu entkommen.
Diplatinum A‐frame complexes with a bridging (di)boron unit in the apex position were synthesized in a single step by the double oxidative addition of dihalo(di)borane precursors at a bis(diphosphine)‐bridged Pt\(^{0}\)\(_{2}\) complex. While structurally analogous to well‐known μ‐borylene complexes, in which delocalized dative three‐center‐two‐electron M‐B‐M bonding prevails, theoretical investigations into the nature of Pt−B bonding in these A‐frame complexes show them to be rare dimetalla(di)boranes displaying two electron‐sharing Pt−B σ‐bonds. This is experimentally reflected in the low kinetic stability of these compounds, which are prone to loss of the (di)boron bridgehead unit.
cAAC‐Stabilized 9,10‐diboraanthracenes—Acenes with Open‐Shell Singlet Biradical Ground States
(2020)
Narrow HOMO–LUMO gaps and high charge‐carrier mobilities make larger acenes potentially high‐efficient materials for organic electronic applications. The performance of such molecules was shown to significantly increase with increasing number of fused benzene rings. Bulk quantities, however, can only be obtained reliably for acenes up to heptacene. Theoretically, (oligo)acenes and (poly)acenes are predicted to have open‐shell singlet biradical and polyradical ground states, respectively, for which experimental evidence is still scarce. We have now been able to dramatically lower the HOMO–LUMO gap of acenes without the necessity of unfavorable elongation of their conjugated π system, by incorporating two boron atoms into the anthracene skeleton. Stabilizing the boron centers with cyclic (alkyl)(amino)carbenes gives neutral 9,10‐diboraanthracenes, which are shown to feature disjointed, open‐shell singlet biradical ground states.
Major advances in the chemistry of 5th and 6th row heavy p-block element compounds have recently uncovered intriguing reactivity patterns towards small molecules such as H\(_2\), CO\(_2\), and ethylene. However, well-defined, homogeneous insertion reactions with carbon monoxide, one of the benchmark substrates in this field, have not been reported to date. We demonstrate here, that a cationic bismuth amide undergoes facile insertion of CO into the Bi–N bond under mild conditions. This approach grants direct access to the first cationic bismuth carbamoyl species. Its characterization by NMR, IR, and UV/vis spectroscopy, elemental analysis, single-crystal X-ray analysis, cyclic voltammetry, and DFT calculations revealed intriguing properties, such as a reversible electron transfer at the bismuth center and an absorption feature at 353 nm ascribed to a transition involving σ- and π-type orbitals of the bismuth-carbamoyl functionality. A combined experimental and theoretical approach provided insight into the mechanism of CO insertion. The substrate scope could be extended to isonitriles.
Radiationless energy transfer is at the core of diverse phenomena, such as light harvesting in photosynthesis\(^1\), energy-transfer-based microspectroscopies\(^2\), nanoscale quantum entanglement\(^3\) and photonic-mode hybridization\(^4\). Typically, the transfer is efficient only for separations that are much shorter than the diffraction limit. This hampers its application in optical communication and quantum information processing, which require spatially selective addressing. Here, we demonstrate highly efficient radiationless coherent energy transfer over a distance of twice the excitation wavelength by combining localized and delocalized\(^5\) plasmonic modes. Analogous to the Tavis-Cummings model, two whispering-gallery-mode antennas\(^6\) placed in the foci of an elliptical plasmonic cavity\(^7\) fabricated from single-crystal gold plates act as a pair of oscillators coupled to a common cavity mode. Time-resolved two-photon photoemission electron microscopy (TR 2P-PEEM) reveals an ultrafast long-range periodic energy transfer in accordance with the simulations. Our observations open perspectives for the optimization and tailoring of mesoscopic energy transfer and long-range quantum emitter coupling.
The enhancement of electronic and optical properties of semiconductor nanostructures is known as a direct consequence of the spatial confinement of carriers. However, the physics of quantum confinement is still not entirely understood. This work focuses on a qualitative study of quasi-zero dimensional II-VI semiconductor nanostructures (quantum dots QDs). In particular, commercially available as-received and heat treated CdSxSe1-x QDs embedded in a dielectric matrix were investigated by means of linear and nonlinear spectroscopy techniques. Low wavenumber Raman in off-resonance scattering regime was applied in order to obtain key-properties of the nanocrystals, such as the QD's size and the distribution of the QD's size inside the inhomogeneous broadening. Moreover, by careful selection of the polarization geometries, different acoustic vibrational modes could be evidenced. In comparison to the bulk, 3D confinement of carriers leads to modifications in the energy distribution in a QD and as a consequence, the intensity of the acoustical phonons is enhanced. However, only 2 acoustic vibrational modes (labelled l=0 and l=2) are Raman-active, which were selectively excited using linear polarized laser light in parallel- and cross-polarized excitation geometries. The QD's size was determined using the dependence of the frequency of the acoustic vibrational mode on the diameter of the vibrating particle, whereas the QD's size distribution was estimated from the normalized full width at the half of the maximum (FWHM) of the symmetric acoustic vibrational mode. In order to study relaxation mechanisms, which in quantum confined systems occur on a ps time scale, ultrafast spectroscopy techniques using laser pulses in the fs range must be employed. To this purpose, fs-FWM and fs-PPT measurements were performed on CdS0.6Se0.4 QDs of 9.1 nm in diameter, embedded in a glass matrix. The laser pulses employed in these experiments were circularly polarized, careful selection of the polarization geometries making different nonlinear processes available to study. It was shown that the relaxation of polarization selection rules depend strongly on the symmetry of the nanocrystals under discussion. The investigated nanocrystals belong to the symmetry group C2v or lower and their hexagonal crystal shape could be evidenced. The relaxation of selection rules was explained in the framework of the 4-level system, including a ground state, two exciton states and a biexcitons state. The appearance of FWM and PPT signals in forbidden polarization geometries was shown to be due to exciton state splitting due to lowering of the QD’s symmetry and due to the strong Coulomb interaction between carriers belonging to the same nanocrystal. Moreover, the significant difference in the origin of the gratings created by two pulses having the same and opposite polarizations, respectively. The intensity of the FWM signals should be the square of the intensity of the PPT signals and therefore the PPT measurements were employed as a check method for the results yielded by the FWM technique. The efficiency of circularly polarized femtosecond FWM spectroscopy techniques was proved once more in the investigation of heat treated CdSe QDs embedded in a dielectric matrix. The role of non-phonon energy relaxation mechanisms in the exciton ground and excited state of the QDs ensemble was extensively studied. Moreover, the dependence of the crystal shape asymmetry on the particle size and on the growth conditions could be estimated. It was shown, that the most efficient procedure to grow high quality nanocrystals is a longer heat treating at lower temperatures. In this case, the particles have more time to "nucleate" and to adopt a more "symmetric" shape. Further, the relaxation of excitons was extensively investigated. It was shown, that the electron intraband dynamics depend strongly on the Coulomb interaction between electrons and holes. Even at low excitation density, the Auger processes cannot be ignored. Auger autoionization of excitons followed by capture of carriers in surface states and deep traps in the dielectric matrix slow down the exciton relaxation process leading to an exciton lifetime ranging on a ps time scale. The relaxation of excitons from higher lying energy levels occurs also on two paths. At the beginning of the relaxation process (t31 < 400 fs), Auger-like thermalization of carriers is responsible for relaxation of the electron from 1pe into its 1se state, while the hole relaxes rapidly through its dense spectrum of states in the valence band. This process is immediately followed by capturing of carriers in deep traps, situated at the semiconductor-dielectric heterointerface. The traps are a consequence of the QD's asymmetry: the more and the deeper the traps, the higher the asymmetry of the nanocrystals (the band offset  is larger). This work presents a complete characterization of CdSSe QDs embedded in a glass matrix. The most important properties of the nanocrystals like QD's size and size distribution inside the inhomogeneous broadening were determined by means of low wavenumber Raman spectroscopy. In order to draw a full picture of these nanoparticles further complementary nonlinear spectroscopy techniques were used. Invaluable conclusions were available as a result of TI-FWM techniques applied in the framework of transient grating on 3D confined nanocrystals embedded in a glass matrix. The polarized the TI-FWM measurements were successfully performed on different QDs ensembles in order to determine symmetry properties and to describe the ultrafast relaxation mechanisms. This work brings additional contribution concerning the preparation of high quality QDs by presenting the effect of different growth conditions on the QDs symmetry, thus indicating a way for efficient manufacturing of nanocrystals.
Die vorliegende Dissertation beschäftigt sich mit nichtlinearen Reaktions-Transport-Systemen, die in zweidimensionalen Medien chemische Wellen und propagierende Fronten ausbilden können. Grundlage dieser Art von räumlichen Mustern sind sogenannte erregbare Systeme. Ein Themengebiet der Arbeit umfasst die Untersuchung von Spiralwellen in der Belousov-Zhabotinsky-Reaktion (BZ-Reaktion). Ein weiterer Teilabschnitt behandelt die Wechselwirkung zwischen Polymersystemen und nichtlinearen chemischen Reaktionen. In den untersuchten, räumlich ausgedehnten Systemen spielt die Kopplung nichtlinearer chemischer Reaktionen an Transportprozesse eine wichtige Rolle. Die generischen Typen von chemischen Mustern sind Pulswellen in einer Raumdimension, kreisförmige Wellen und Spiralen in einem zweidimensionalen System und kugelschalen- bzw. schraubenförmige Wellen in drei Raumdimensionen. Auf theoretischer Basis werden Effekte von Spiralwellen bei Änderung der Erregbarkeit des Reaktionsmediums dargestellt.In der vorliegenden Arbeit ist es erstmals gelungen, eine Methode zu entwickeln, die es erlaubt die Erregbarkeit in der BZ-Reaktion sowie in einer Vielzahl weiterer nichtlinearer Reaktionen zu beeinflussen. Ein weiteres Themengebiet dieser Dissertation ist die Untersuchung von pH-Systeme in Hydrogelen. Dies sind hydrophile Gele, die ihr Volumen in wässrigen Lösungen verändern können. In der vorliegenden Arbeit wurden Gele auf der Basis von Acrylamid und Methacrylat als Copolymer verwendet und an die oben beschriebenen pH-Oszillatoren angekoppelt. Durch Polymerisation von Acrylamid zusammen mit Natriummethacrylat konnte ein mit einem pH-Oszillator beladenes Gel hergestellt werden, das nach Start der Reaktion durch eine kleine Menge Säure mit einer deutlichen Volumenkontraktion reagiert. Diese Kontraktion des Gels konnte ausgenutzt werden, um die chemische Energie eines pH-Reaktionssystems in eine mechanische Kraftwirkung umzuwandeln.
The goal of this thesis was the development and application of higher-order spectroscopic techniques. In contrast to ordinary pump–probe (PP) and two-dimensional (2D) spectroscopy, higher-order coherently detected spectroscopic methods measure a polarization that has an order of nonlinearity higher than three. The key idea of the techniques in this thesis is to isolate the higher-order signals from the lower-order signals either by their excitation frequency or by their excitation intensity dependence. Due to the increased number of interactions in higher-order spectroscopy, highly excited states can be probed. For excitonic systems such as aggregates and polymers, the fifth-order signal allows one to directly measure exciton–exciton annihilation (EEA). In polymers and aggregates, the exciton transport is not connected to a change of the absorption and can therefore not be investigated with conventional third-order techniques. In contrast, EEA can be used as a probe to study exciton diffusion in these isonergetic systems. As a part of this thesis, anisotropy in fifth-order 2D spectroscopy was investigated and was used to study geometric properties in polymers.
In 2D spectroscopy, the multi-quantum signals are separated from each other by their spectral position along the excitation axis. This concept can be extended systematically to higher signals. Another approach to isolate multi-quantum signals in PP spectroscopy utilizes the excitation intensity. The PP signal is measured at specific excitation intensities and linear combinations of these measurements result in different signal contributions. However, these signals do not correspond to clean nonlinear signals because the higher-order signals contaminate the lower-order multi-quantum signals. In this thesis, a correction protocol was derived that uses the isolated multiquantum signals, both from 2D spectroscopy and from PP spectroscopy, to remove the contamination of higher-order signals resulting in clean nonlinear signals. Using the correction on the third-order signal allows one to obtain annihilation-free signals at high excitation intensities, i.e., with high signal-to-noise ratio. Isolation and correction in PP and 2D spectroscopy were directly compared by measuring the clean third-order signals of squaraine oligomers at high excitation intensities. Furthermore, higher-order PP spectroscopy was used to isolate up to the 13th nonlinear order of squaraine polymers.
The demonstrated spectroscopic techniques represent general procedures to isolate clean signals in terms of perturbation theory. The technique of higher-order PP spectroscopy needs only small modifications of ordinary PP setups which opens the field of higher-order spectroscopy to the broad scientific community. The technique to obtain clean nonlinear signals allows one to systematically increase the number of interacting (quasi)particles in a system and to characterize their interaction energies and dynamics.
Coherent Multidimensional Spectroscopy in Molecular Beams and Liquids Using Incoherent Observables
(2018)
The aim of the present work was to implement an experimental approach that enables coherent two-dimensional (2D) electronic spectroscopy of samples in various states of matter. For samples in the liquid phase, a setup was realized that utilizes the sample fluorescence for the acquisition of 2D spectra. Whereas the liquid-phase approach has been established before, coherent 2D spectroscopy on gaseous samples in a molecular beam as developed in this work is in fact a new method. It employs for the first time cations in a time-of-flight mass spectrometer for signal detection and was used to obtain the first ion-selective 2D spectra of a molecular-beam sample. Additionally, a new acquisition concept was developed in this thesis that significantly decreases measurement times in 2D spectroscopy using optimized sparse sampling and a compressed-sensing reconstruction algorithm.
Characteristic for the variant of 2D spectroscopy presented in this work is the usage of a phase-coherent sequence of four laser pulses in a fully collinear geometry for sample excitation. The pulse sequence was generated by a custom-designed pulse shaper that is capable of rapid scanning by changing the pulse parameters such as time delays and phases with the repetition rate of the laser. The sample's response was detected by monitoring incoherent observables that arise from the final-state population, for instance fluorescence or cations. Phase cycling, i.e., signal acquisition with different combinations of the relative phases of the excitation pulses, was applied to extract nonlinear signal contributions from the full signal during data analysis.
Liquid-phase 2D fluorescence spectroscopy was established with the laser dye cresyl violet as a sample molecule, confirming coherent oscillations previously observed in literature that are originating from vibronic coherences in specific regions of the 2D spectrum.
The data set of this experiment was used subsequently to introduce optimized sparse sampling in 2D spectroscopy. An optimization algorithm was implemented in order to find the best sampling pattern while taking only one quarter of the regular time-domain sampling points, thereby reducing the acquisition time by a factor of four. Signal recovery was based on a new and compact representation of 2D spectra using the von Neumann basis, which required about six times less coefficients than the Fourier basis to retain the relevant information. Successful reconstruction was shown by recovering the coherent oscillations in cresyl violet from a reduced data set.
Finally, molecular-beam coherent 2D spectroscopy was introduced with an investigation of ionization pathways in highly-excited nitrogen dioxide, revealing transitions to discrete auto-ionizing states as the dominant contribution to the ion signal. Furthermore, the advantage of the time-of-flight approach to obtain reactant and product 2D spectra simultaneously enabled the observation of distinct differences in the multiphoton-ionization response functions of the nitrogen dioxide cation and the nitrogen oxide ionic fragment.
The developed experimental techniques of this work will facilitate fast acquisition of 2D spectra for samples in various states of matter and permit reliable direct comparison of results. Therefore, they pave the way to study the properties of quantum coherences during photophysical processes or photochemical reactions in different environments.
This thesis describes novel concepts for the measurement of the static and dynamic properties of the electronic structure of molecules and nanocrystals in the liquid phase by means of coherent fluorescence-detected spectroscopy in two and three frequency dimensions. These concepts are based on the systematic variation ("phase cycling") of a sequence of multiple time-delayed femtosecond excitation pulses in order to decode a multitude of novel nonlinear signals from the resulting phase-dependent fluorescence signal. These signals represent any permutation of correlations between zero-, one-, two-, and three-quantum coherences. To this end, two new phase-cycling schemes have been developed which can simultaneously resolve and discriminate several nonlinear signals of sixth order, including those of the fourth order of nonlinearity.
By means of the sixth-order signals recorded in this work, static properties of highly excited electronic states in molecules such as their energies, transition dipole moments, and relative displacement of electronic potential surfaces, as well as dynamic properties in terms of their relaxation kinetics, can be ascertained. Furthermore, it was shown that these signals are suitable for the characterization of exciton-exciton correlations in colloidal quantum dots and for the measurement of ultrafast exciton-exciton annihilation in molecular aggregates.
The experiments performed in this thesis mark an important step towards the complete characterization of the nonlinear response of quantum systems. In view of this, the concept of fluorescence-detected multiple-quantum coherence multidimensional spectroscopy introduced here offers a unified, systematic approach.
In virtue of the technical advantages such as the use of a single excitation beam and the absence of nonresonant contributions, the measurement protocols developed here can be directly transferred to other incoherent observables and to sample systems in other states of matter. Furthermore, the approaches presented here can be systematically extended to higher frequency dimensions and higher orders of nonlinearity.
Three spectroscopic techniques are presented that provide simultaneous spatial and temporal resolution: modified confocal microscopy with heterodyne detection, space-time-resolved spectroscopy using coherent control concepts, and coherent two-dimensional nano-spectroscopy. Latest experimental results are discussed.
Coherent two-dimensional (2D) optical spectroscopy has revolutionized our ability to probe many types of couplings and ultrafast dynamics in complex quantum systems. The dynamics and function of any quantum system strongly depend on couplings to the environment. Thus, studying coherent interactions for different environments remains a topic of tremendous interest. Here we introduce coherent 2D electronic mass spectrometry that allows 2D measurements on effusive molecular beams and thus on quantum systems with minimum system-bath interaction and employ this to identify the major ionization pathway of 3d Rydberg states in NO2. Furthermore, we present 2D spectra of multiphoton ionization, disclosing distinct differences in the nonlinear response functions leading to the ionization products. We also realize the equivalent of spectrally resolved transient-absorption measurements without the necessity for acquiring weak absorption changes. Using time-of-flight detection introduces cations as an observable, enabling the 2D spectroscopic study on isolated systems of photophysical and photochemical reactions.
Coherent two-dimensional electronic spectroscopy in the Soret band of a chiral porphyrin dimer
(2013)
Using coherent two-dimensional (2D) electronic spectroscopy in fully noncollinear geometry, we observe the excitonic coupling of β,β'-linked bis[tetraphenylporphyrinato-zinc(II)] on an ultrafast timescale in the excited state. The results for two states in the Soret band originating from an excitonic splitting are explained by population transfer with approximately 100 fs from the energetically higher to the lower excitonic state. This interpretation is consistent with exemplary calculations of 2D spectra for a model four-level system with coupling.
Collective Response in DNA-Stabilized Silver Cluster Assemblies from First-Principles Simulations
(2019)
We investigate fluorescence resonant energy transfer and concurrent electron dynamics in a pair of DNA-stabilized silver clusters. For this purpose we introduce a methodology for the simulation of collective optoelectronic properties of coupled molecular aggregates starting from first-principles quantum chemistry, which can be further applied to a broad range of coupled molecular systems to study their electro-optical response. Our simulations reveal the existence of low-energy coupled excitonic states, which enable ultrafast energy transport between subunits, and give insight into the origin of the fluorescence signal in coupled DNA-stabilized silver clusters, which have been recently experimentally detected. Hence, we demonstrate the possibility of constructing ultrasmall energy transmission lines and optical converters based on these hybrid molecular systems.
Comparison of moving and fixed basis sets for nonadiabatic quantum dynamics at conical intersections
(2020)
We assess the performance of two different types of basis sets for nonadiabatic quantum dynamics at conical intersections. The basis sets of both types are generated using Ehrenfest trajectories of nuclear coherent states. These trajectories can either serve as a moving (time-dependent) basis or be employed to sample a fixed (time-independent) basis. We demonstrate on the example of two-state two-dimensional and three-state five-dimensional models that both basis set types can yield highly accurate results for population transfer at intersections, as compared with reference quantum dynamics. The details of wave packet evolutions are discussed for the case of the two-dimensional model. The fixed basis is found to be superior to the moving one in reproducing nonlocal spreading and maintaining correct shape of the wave packet upon time evolution. Moreover, for the models considered, the fixed basis set outperforms the moving one in terms of computational efficiency.
Comparison of moving and fixed basis sets for nonadiabatic quantum dynamics at conical intersections
(2020)
We assess the performance of two different types of basis sets for nonadiabatic quantum dynamics at conical intersections. The basis sets of both types are generated using Ehrenfest trajectories of nuclear coherent states. These trajectories can either serve as a moving (time-dependent) basis or be employed to sample a fixed (time-independent) basis. We demonstrate on the example of two-state two-dimensional and three-state five-dimensional models that both basis set types can yield highly accurate results for population transfer at intersections, as compared with reference quantum dynamics. The details of wave packet evolutions are discussed for the case of the two-dimensional model. The fixed basis is found to be superior to the moving one in reproducing true nonlocal spreading and maintaining correct shape of the wave packet upon time evolution. Moreover, for the models considered, the fixed basis set outperforms the moving one in terms of computational efficiency.
Photochemical reactions in solution often proceed via competing reaction pathways
comprising intermediates that capture a solvent molecule. A disclosure of the underlying
reaction mechanisms is challenging due to the rapid nature of these processes and the
intricate identification of how many solvent molecules are involved. Here combining
broadband femtosecond transient absorption and quantum mechanics/molecular mechanics
simulations, we show for one of the most reactive species, diphenylcarbene, that the
decision-maker is not the nearest solvent molecule but its neighbour. The hydrogen bonding
dynamics determine which reaction channels are accessible in binary solvent mixtures at
room temperature. In-depth analysis of the amount of nascent intermediates corroborates
the importance of a hydrogen-bonded complex with a protic solvent molecule, in striking
analogy to complexes found at cryogenic temperatures. Our results show that adjacent
solvent molecules take the role of key abettors rather than bystanders for the fate of the
reactive intermediate.
This work presents excited state investigations on several systems with respect to experimental
spectroscopic work. The majority of projects covers the temporal evolution of
excitations in thin films of organic semiconductor materials. In the first chapters, thinfilm
and interface systems are build from diindeno[1,2,3-cd:1’,2’,3’-lm]perylene (DIP)
and N,N’-bis-(2-ethylhexyl)-dicyanoperylene-3,4:9,10-bis(dicarboximide) (PDIR-CN2)
layers, in the third chapter bulk systems consist of 4,4’,4”-tris[(3-methylphenyl)phenylamino]
triphenylamine (m-MTDATA), 4,7-diphenyl-1,10-phenanthroline (BPhen) and
tris-(2,4,6-trimethyl-3-(pyridin-3-yl)phenyl)borane (3TPYMB). These were investigated
by aggregate-based calculations. Careful selection of methods and incorporation
of geometrical relaxation and environmental effects allows for a precise energetical assignment
of excitations. The biggest issue was a proper description of charge-transfer
excitations, which was resolved by the application of ionization potential tuning on
aggregates. Subsequent characterization of excitations and their interplay condenses
the picture. Therefore, we could assign important features of the experimental spectroscopic
data and explain differences between systems.
The last chapter in this work covers the analysis of single molecule spectroscopy on
methylbismut. This poses different challenges for computations, such as multi-reference
character of low-lying excitations and an intrinsic need for a relativistic description.
We resolved this by combining complete active space self-consistent field based methods
with scalarrelativistic density-functional theory. Thus we were able to confidently
assign the spectroscopic features and explain underlying processes.
KasA is a key enzyme which plays an essential part in the biosynthetic pathway of mycolic acids, the building block of cell wall in Mycobacterium tuberculosis. Its importance was demonstrated by the finding that the depletion of KasA leads to the cell lysis of Mycobacterium tuberculosis. Since Mycobacterium tuberculosis is a pathogen of tuberculosis, the second leading cause of death from an infectious disease worldwide, KasA has drawn attention as one of the attractive drug targets against tuberculosis. Due to the emergence of extensively drug-resistant strains which make most of the known antibiotics for treating tuberculosis ineffective, it became an urgent issue to develop new drugs against tuberculosis. In chapter 3.1, the protonation state of the catalytic residues in the resting state was mainly addressed. The FEP computation and MD simulations were employed for this investigation, and the results showed that the zwitterionic state is most probable. To underpin this conclusion with more solid data, The PESs for the proton transfer between the neutral and zwitterionic state were computed in the context of QM/MM. However, due to the strong dependency of the QM/MM optimization on the initial structure, it was not possible to obtain consistent results from these computations. To circumvent this problem, QM/MM based umbrella sampling was carried out with a semi-empirical method (RM1), and the resulting PMF surface indicated that the zwitterionic state is more stable than the neutral state. In chapter 3.2, the protonation state of significant residues in the acyl-enzyme state was investigated. Unlike other catalytic residues, the protonation state of His311 is ambiguous in the acyl-enzyme state, and different decarboxylation mechanisms can be derived depending on the protonation state of His311 in the acyl-enzyme state. Therefore, FEP computations were carried out to find most probable protonation state of His311 in terms of free energy, and the results showed that the pKa value at Nδ is considerably lowered by the enzyme environment while that of Nε is not. Additionally, the PMF profiles for the proton transfer between Lys340 and Glu354 were computed using QM/MM based umbrellas sampling method, and the results showed that the property of the Lys340/Glu354 pair is neutral rather than ionic when His311 is protonated at Nε. Moreover, a relatively larger ionic character of the Lys340/Glu354 pair when His311 is doubly protonated provides a valuable insight into how the Lys340/Glu354 pair plays a role in shifting the protonated state from Nδ to Nε in His311 after the acyl-transfer step. Overall, the results demonstrated that His311 is neutral and protonated at Nε, and the Lys340/Glu354 pair is also neutral in the acyl-enzyme state. Those computational results lead to the conclusion that the decarboxylation reaction is facilitated by an oxyanion hole which is comprised of two catalytic histidines. In chapter 3.3, the protonation state of catalytic residues in the resting state was revisited because a recent benchmark study showed that the employed semi-empirical method (RM1) in chapter 3.1 tends to overestimate the stabilization of the zwitterionic state. Furthermore, the Lys340/Glu354 pair was considered as purely ionic in chapter 3.1, while it actually has a mixed neutral and ionic character as demonstrated in chapter 3.2. The new investigations employed a larger QM region including the Lys340/Glu354 pair with the BLYP/6-31G** approach, which was proven to be accurate enough for the present purpose by benchmark computations. The new results from the QM/MM MD and FEP computations indicated the catalytic residues to be neutral most probably in the resting state, and this in turn brought up the question how KasA can be activated to initiate the catalytic reaction. On the basis of the results from the MD simulations and FEP computations for the His311Ala mutant in chapter 3.1, we hypothesized that the open conformation of Phe404 would trigger the activation of the catalytic residues by the formation of a strong hydrogen bond. The QM/MM MD simulation proved that the activation of the catalytic residues can indeed be accomplished by the open conformation of Phe404 we suggested, and the corresponding force field based PMF profile also indicated that this conformational change is energetically feasible. The distribution of hydrophilic and hydrophobic residues in the malonyl binding pocket in conjunction with our computational results further provided a valuable insight into the detailed process how the catalytic residues is activated upon the substrate entering.
Subject of this work was to investigate the influence of nonadiabatic coupling on the dynamical changes of electron and nuclear density. The properties of electron density have neither been discussed in the stationary case, nor for excited electronic states or for a coupled electronic and nuclear motion. In order to remove these restrictions one must describe the quantum mechanical motion of all particles in a system at the same level. This is only possible for very small systems. A model system developed by Shin and Metiu [1, 2] contains all necessary physical ingredients to describe a combined electronic and nuclear motion. It consists of a single nuclear and electronic degree of freedom and the particle interaction is parameterized in such a way as to allow for a facile switching between and adiabatic (Born-Oppenheimer type) and a strongly coupled dynamics. The first part of the work determined the “static” properties of the model system: The calculation of electronic eigenfunctions, adiabatic potential curves, kinetic coupling elements and transition dipole moments allowed for a prediction of the coupled dynamics. The potentials obtained from different parameterization showed two distinct cases: In the first case the ground and first excited state are separated by a large energy gap which is the typical Born-Oppenheimer case; the second one exhibits an avoided crossing which results in a breakdown of the adiabatic approximation. Due to the electronic properties of the system, the quantum dynamics in the two distinct situations is very different. This was illustrated by calculating nuclear and electron densities as a function of time. In the Born-Oppenheimer case, the electron density followed the vibrational motion of the nucleus. This was demonstrated in two examples. In the strongly coupled case the wave packet did not exhibit features caused by nonadiabatic coupling. However, projections of the wave function onto the electronic states revealed the usual picture obtained from solutions of the nuclear Schrödinger equation involving coupled electronic states. In that case the nuclear motion triggered charge transfer via nonadiabatic coupling. The second part of the work demonstrated that the model system can easily be modified to yield binding situations often found in diatomic molecules. The different situations can be characterized in terms of bound and dissociative adiabatic potential curves. The investigation focussed on the case of an electronic predissociation, where the ground state is dissociative in the asymptotic limit of large internuclear distances. Within our model system we were able to demonstrate how the character of the electron density changes during the fragmentation process. In the third part we investigated the influence of external fields on the correlated dynamics of electron and nucleus. Employing adiabatic potential curves, the structure of absorption spectra can be understood within the weak-field limit. In the above described Born-Oppenheimer case the adiabatically calculated spectrum was in very good agreement with the exact one, whereas in the strongly coupled case the obtained spectrum was not able to resemble the exact one. Regarding the dynamics during a laser excitation process the time-dependent electron and nuclear densities nicely illustrated the famous Franck-Condon principle. The interaction with strong laser pulses lead to an excitation of many bound electronic and vibrational states. The electron density reflected the classical-like quiver motion of the electron induced by the fast variations of the electric field. The nucleus did not follow these fast oscillations because of its much larger mass. The last part of the work extended the original model system by including an additional electron. As a consequence of the Pauli principle, the spatial electronic wave function has to be either symmetric or anti-symmetric with respect to exchange of the two electrons. This corresponds to anti-parallel or parallel electron spins, respectively. The extended model already contains the physical properties of a many-electron system. Solving the time-dependent Schrödinger equation for a typical vibrational wave packet motion clearly indicated that the electron density is no longer suited to “localize” single electrons. We extended the definition of the electron localization function (ELF) to an exact, time-dependent wave function and demonstrated, how the ELF can be used to further characterize a coupled electron and nuclear motion. Finally, we gave an outlook of how to define electron localization in the case of anti-parallel electron spins. We derived a quantity similar to the ELF denoted “anti-parallel spin electron localization function” (ALF) and demonstrated that the ALF allows to follow time-dependent changes of the electron localization in a numerical example. [1] S. Shin, H. Metiu, J. Chem. Phys. 1995, 102, 9285. [2] S. Shin, H. Metiu, J. Phys. Chem. 1996, 100, 7867.
In der vorliegenden Arbeit wurde erfolgreich eine neue Gasphasen-Apparatur für
Photoelektronen-Imaging-Experimente simuliert, aufgebaut und in Verbindung mit einem ps-Lasersystem in Betrieb genommen.
Neben dem Aufbau der Apparatur stand die Aufklärung der Dynamik angeregter Zustände von aromatischen Heterocyclen und Pyrenen im Fokus dieser Arbeit. Die untersuchten Moleküle wurden durch Resonanzverstärkte Mehrphotonenionisation in einem Molekularstrahlexperiment sowohl zeit-, als auch frequenzaufgelöst untersucht.
Most proteins work in aqueous solution and the interaction with water strongly affects their structure and function. However, experimentally the motion of a specific single water molecule is difficult to trace by conventional methods, because they average over the heterogeneous solvation structure of bulk water surrounding the protein. Here, we provide a detailed atomistic picture of the water rearrangement dynamics around the –CONH– peptide linkage in the two model systems formanilide and acetanilide, which simply differ by the presence of a methyl group at the peptide linkage. The combination of picosecond pump–probe time-resolved infrared spectroscopy and molecular dynamics simulations demonstrates that the solvation dynamics at the molecular level is strongly influenced by this small structural difference. The effective timescales for solvent migration triggered by ionization are mainly controlled by the efficiency of the kinetic energy redistribution rather than the shape of the potential energy surface. This approach provides a fundamental understanding of protein hydration and may help to design functional molecules in solution with tailored properties.
The reaction products of the picolyl radicals at high temperature were characterized by mass‐selective threshold photoelectron spectroscopy in the gas phase. Aminomethylpyridines were pyrolyzed to initially produce picolyl radicals (m /z =92). At higher temperatures further thermal reaction products are generated in the pyrolysis reactor. All compounds were identified by mass‐selected threshold photoelectron spectroscopy and several hitherto unexplored reactive molecules were characterized. The mechanism for several dissociation pathways was outlined in computations. The spectrum of m /z =91, resulting from hydrogen loss of picolyl, shows four isomers, two ethynyl pyrroles with adiabatic ionization energies (IE\(_{ad}\)) of 7.99 eV (2‐ethynyl‐1H ‐pyrrole) and 8.12 eV (3‐ethynyl‐1H ‐pyrrole), and two cyclopentadiene carbonitriles with IE′s of 9.14 eV (cyclopenta‐1,3‐diene‐1‐carbonitrile) and 9.25 eV (cyclopenta‐1,4‐diene‐1‐carbonitrile). A second consecutive hydrogen loss forms the cyanocyclopentadienyl radical with IE′s of 9.07 eV (T\(_0\)) and 9.21 eV (S\(_1\)). This compound dissociates further to acetylene and the cyanopropynyl radical (IE=9.35 eV). Furthermore, the cyclopentadienyl radical, penta‐1,3‐diyne, cyclopentadiene and propargyl were identified in the spectra. Computations indicate that dissociation of picolyl proceeds initially via a resonance‐stabilized seven‐membered ring.
This thesis is concerned with the development of an on-line in-situ device for a chemical characterisation of flowing aerosols. The thesis describes the principles and most important features of such a system, allowing also on-line measurements using Raman spectroscopy as a diagnostic technique An analysis of the effect of forced oscillations on the motion of the particle dispersed in a gas flow is given in Chapter 2. Also the most important particle parameters are introduced. A review of the particle/fluid interaction in laminar air flows and the response of the particle is presented. In Chapter 3 the behaviour of the particle under different external conditions (ion bombardment and electric fields) is extended. A brief review of the most important particle charging theories (diffusion, field, and alternating potential charging) shows, that the effect of the electrical properties (represented by the dielectric constant) of the particles affects the charging process. A non-contact method for particle charge measurement was also presented. In the second part of the chapter, the interaction between the electric field and the charged particle for the purpose of particle trapping is illustrated. The most common systems like the two or four ring electrodynamic balance and the quadrupole trap are pointed out. In Chapter 4 a short review of the possibility of using scattered light to study aerosol particles is presented. First, the conditions and the facilities of using the Mie theory for particle size and refractive index determination are mentioned, then some features concerning the classical treatment of the Raman effect are presented Supported by the theoretical considerations exposed in Chapter 2, 3, and 4 the construction and the tests of different devices are presented in Chapter 5. Following the goal of the thesis, first an overview of the used materials and methods for particle generation is presented. Then, the constructed charging devices are described (from the mechanical and electrical point of view) and compared by measuring the acquired charge on the particle. Charged particles can be trapped in different containers. Two types of axially symmetric electrodynamic balances (two ring or an extended four ring configuration) were presented. For a deeper understanding these systems were studied using analytic and numerical methods. Considering the presented purpose of the work another type of trapping system has been developed, namely the quadrupole trap. A similar theoretical characterisation (in term’s of Mathieu equation) as for the electrodynamic balance was presented pointing out some specific features of this system. The incoming particle stream will be focused to the centre of the system simultaneously also the applied DC and AC potential onto the tube electrodes, yields a stable trapping of one or more particles. Chapter 6 consists of two parts: the system for single particle and for many particles investigation. The individual devices presented in Chapter 5 are now put together. The first part presents the method and the experimental realisation of a set-up for solid particle injection. In order to suppress the phase injection disadvantage found for the electrodynamic balance a developed program processes the information obtained from a particle cloud through an adequate electronic detection system, and reduces the number of particles until just one single particle is trapped. The method for one particle investigation can be extended for many particles. Using the presented set-up the particles are moved from one quadrupole to another and transformed from a particle cloud to a particle stream. A linearity between an external vertical mounted detector and the formed image of the particle stream on the CCD camera has been observed and used for simultaneous detection of many particles by Raman spectroscopy. For both methods Raman results are presented. One limitation of Raman Spectroscopy is the relatively long integration time needed for adequate signal-to-noise ratio. There are two factors which influence the integration time: first the incident radiation and the detector sensitivity, and second the intensity of the Raman bands. Using a CCD detector, the desired detector sensitivity should be achieved. So, the improvement of the signal-to-noise ratio should be the next goal in the system development. In order to reduce the integration time an optical system including optic fibres and the integration of an FT-Raman module operating in the visible region is planed. The goal of this work was to develop and construct an instrument for on-line in-situ single particle investigation by Raman spectroscopy. With the presented experimental set-up and the developed program the purpose of the work, the on-line in-situ near atmospheric pressure aerosol investigation was achieved. The Raman spectroscopy has been used successfully for a chemical characterisation of the aerosol particles.
Plasmonic nanostructures are considered promising candidates for essential components of integrated quantum technologies because of their ability to efficiently localize broad-band electromagnetic fields on the nanoscale. The resulting local near field can be understood as a spatial superposition of spectrally different plasmon-polariton modes due to the spectrally broad optical excitation, and thus can be described as a classical wave packet. Since plasmon polaritons, in turn, can transmit and receive non-classical light states, the exciting question arises to what extent they have to be described as quantum mechanical wave packets, i.e. as a superposition of different quantum states.
But how to probe, characterize and eventually manipulate the quantum state of such plasmon polaritons? Up to now, probing at room temperatures relied completely on analyzing quantum optical properties of the corresponding in-going and out-going far-field photon modes. However, these methods so far only allow a rather indirect investigation of the plasmon-polariton quantum state by means of transfer into photons. Moreover, these indirect methods lack spatial resolution and therefore do not provide on-site access to the plasmon-polariton quantum state. However, since the spectroscopic method of coherent two-dimensional (2D) nanoscopy offers the capability to follow the plasmon-
polariton quantum state both in Hilbert space and in space and time domain a complete characterization of the plasmon polariton is possible.
In this thesis a versatile coherent 2D nanoscopy setup is presented combining spectral tunability and femtosecond time resolution with spatial resolution on the nanometer scale due to the detection of optically excited nonlinear emitted electrons via photoemission electron microscopy (PEEM). Optical excitation by amplitude- and phase-shaped, systematically-modified and interferometric-stable multipulse sequences is realized, and characterized via Fourier-transform spectral interferometry (FTSI). This linear technique enables efficient data acquisition in parallel to a simultaneously performed experiment. The full electric-field reconstruction of every generated multipulse sequence is used to analyze the effect of non-ideal pulse sequences on the two-dimensional spectral data of population-based multidimensional spectroscopy methods like, e.g., the coherent 2D nanoscopy applied in this thesis. Investigation of the spatially-resolved nonlinear electron emission yield from plasmonic gold nanoresonators by coherent 2D nanoscopy requires a quasi-particle treatment of the addressed plasmon-polariton mode and development of a quantum model to adequately describe the plasmon-assisted multi-quantum electron emission from nanostructures. Good agreement between simulated and experimental data enables to connect certain spectral features to superpositions of non-adjacent plasmon-polariton quantum states, i.e, non-adjacent occupation-number states of the underlying quantized, harmonic oscillator, thus direct probing of the plasmon-polariton quantum wave packet at the location of the nanostructure.
This is a necessary step to locally control and manipulate the plasmon-polariton quantum state and thus of general interest for the realization of nanoscale quantum optical devices.
The aim of the present work is the development and implementation of new simulation
possibilities for the CAST program package. Development included, among other
things, the partial parallelization of the already existing force fields, extension of the
treatment of electrostatic interactions and implementation of molecular dynamics and
free energy algorithms.
The most time consuming part of force field calculations is the evaluation of the nonbonded
interactions. The calculation of these interactions has been parallelized and
it could be shown to yield a significant speed up for multi-core calculations compared
to the serial execution on only one CPU. For both, simple energy/gradient as well as
molecular dynamics simulations the computational time could be significantly reduced.
To further increase the performance of calculations employing a cutoff radius, a linkedcell
algorithm was implemented which is able to build up the non-bonded interaction
list up to 7 times faster than the original algorithm.
To provide access to dynamic properties based on the natural time evolution of a system,
a molecular dynamics code has been implemented. The MD implementation features
two integration schemes for the equations of motion which are able to generate stable
trajectories. The basic MD algorithm as described in Section 1.2 leads to the sampling
in the microcanonical (NVE) ensemble. The practical use of NVE simulations is limited
though because it does not correspond to any experimentally realistic situation.
More realistic simulation conditions are found in the isothermal (NVT) and isothermalisobaric
(NPT) ensembles. To generate those ensembles, temperature and pressure
control has been implemented. The temperature can be controlled in two ways: by direct
velocity scaling and by a Nose-Hoover thermostat which produces a real canonical
ensemble. The pressure coupling is realized by implementation of a Berendsen barostat.
The pressure coupling can be used for isotropic or anisotropic box dimensions with the
restriction that the angles of the box need to be 90. A crucial simulation parameter in
MD simulations is the length of the timestep. The timestep is usually in the rang of 1fs.
Increasing the timestep beyond 1fs can lead to unstable trajectories since the fastest
motion in the system, usually the H-X stretch vibration can not be sampled anymore.
A way to allow for bigger timesteps is the use of a constraint algorithm which constrains the H-X bonds to the equilibrium distance. For this the RATTLE algorithm has been
implemented in the CAST program. The velocity Verlet algorithm in combination with
the RATTLE algorithm has been shown to yield stable trajectories for an arbitrary
length of simulation time. In a first application the MD implementation is used in conjunction
with the MOPAC interface for the investigation of PBI sidechains and their
rigidity. The theoretical investigations show a nice agreement with experimentally obtained
results. Based on the MD techniques two algorithms for the determination of free
energy differences have been implemented. The umbrella sampling algorithm can be
used to determine the free energy change along a reaction coordinate based on distances
or dihedral angles. The implementation was tested on the stretching of a deca-L-alanine
and the rotation barrier of butane in vacuum. The results are in nearly perfect agreement
with literature values. For the FEP implementation calculations were performed
for a zero-sum transformation of ethane in explicit solvent, the charging of a sodium
ion in explicit solvent and the transformations of a tripeptide in explicit solvent. All
results are in agreement with benchmark calculations of the NAMD program as well
as literature values. The FEP formalism was then applied to determine the relative
binding free energies between two inhibitors in an inhibitor-protein complex.
Next to force fields, ab-initio methods can be used for simulations and global optimizations.
Since the performance of such methods is usually significantly poorer than force
field applications, the use for global optimizations is limited. Nevertheless significant
progress has been made by porting these codes to GPUs. In order to make use of these
developments a MPI interface has been implemented into CAST for communication
with the DFT code TeraChem. The CAST/TeraChem combination has been tested
on the $H_2 O_{10}$ cluster as well as the polypeptide met-Enkephalin. The pure ab-initio
calculations showed a superior behavior compared to the standard procedure where the
force field results are usually refined using quantum chemical methods.
Part 1 of this work describes the development of accurate physically grounded force fields for
intermolecular Cation-π interactions based on SAPT energy decomposition analysis.
The presented results demonstrate the benefits of the used DFT-SAPT method to describe non-bonding
interactions. First of all, this method is able to reproduce the high level CCSD(T) energy values
but using much less computational time. Second it provides the possibility to separate the total
intermolecular interaction energy into several physically meaningful contributions. The relative
contributions of the dimers investigated can be seen in Fig. 6.16. In Tab. 6.3 the percentage
contribution of the attractive energy parts to the stabilization energy is shown. The polarization
energy is important for the NH+...C6H6 interaction, whereas it becomes less crucial
considering other dimers. The dispersion energy contribution is large in the case of
the C6H6...H2O dimers, whereas it is relatively less important for the NH+...C6H6
interaction. The electrostatic energy contributes a large amount of stabilizing energy
in all considered dimer interactions. ...
Anhand der ersten Festkörperstrukturen von Dibortetraiodid (B\(_2\)I\(_4\)) wird gezeigt, dass dieses nicht, wie lange angenommen, analog zu den leichteren Dibortetrahalogeniden B\(_2\)F\(_4\), B\(_2\)Cl\(_4\) und B\(_2\)Br\(_4\) in allen Aggregatzuständen in Form diskreter Moleküle mit planaren, dreifach koordinierten Boratomen vorliegt. Röntgenstrukturanalysen, Festkörper‐NMR‐ und IR‐Messungen zeigen, dass B\(_2\)I\(_4\) im Festkörper in zwei polymeren Konformeren vorkommt, die tetraedrisch koordinierte Boratome enthalten. Anhand von DFT‐Rechnungen werden die IR‐Spektren in Lösung und im Festkörper simuliert und mit den experimentellen Daten verglichen.
In dieser Arbeit wurde die unimolekulare Dissoziations- und Rekombinations-Reaktion von Jodmolekülen untersucht, die in mikroporösen Porosil-Kristalliten eingelagert waren. Hierfür wurden sowohl experimentelle Pump-Probe-Experimente als auch theoretische Untersuchungen auf der Femtosekunden-Zeitskala durchgeführt. Die Idee, die diesen Experimenten zugrunde lag, bestand darin, zu erfahren, in welcher Weise und in welchem Maße die Struktur der Umgebung einen Einfluss auf die elementaren dynamischen Prozesse der Reaktion ausübt. Die hier untersuchten Systeme I$_2$ in DDR-, TON-, FER- und MFI-Porosilen sind Modellsysteme für komplexere Moleküle, eingelagert in einer mikroporösen kristallinen Umgebung.
A 1,8-naphthyridine diphosphine (NDP) reacts with boron-containing Lewis acids to generate complexes featuring a number of different naphthyridine bonding modes. When exposed to diborane B\(_{2}\)Br\(_{4}\), NDP underwent self-deprotonation to afford [NDP-B\(_{2}\)Br\(_{3}\)]Br, an unsymmetrical diborane comprised of four fused rings. The reaction of two equivalents of monoborane BBr\(_{3}\) and NDP in a non-polar solvent provided the simple phosphine-borane adduct [NDP(BBr\(_{3}\))\(_{2}\)], which then underwent intramolecular halide abstraction to furnish the salt [NDP-BBr\(_{2}\)][BBr\(_{4}\)], featuring a different coordination mode from that of [NDP-B\(_{2}\)Br\(_{3}\)]Br. Direct deprotonation of NDP by KHMDS or PhCH2K generates mono- and dipotassium reagents, respectively. The monopotassium reagent reacts with one or half an equivalent of B\(_{2}\)(NMe\(_{2}\))\(_{2}\)Cl\(_{2}\) to afford NDP-based diboranes with three or four amino substituents.
Disentangling the Formation of PAHs in Extreme Environments by IR/UV Double Resonance Spectroscopy
(2023)
Polycyclic Aromatic Hydrocarbons (PAHs) are considered as key building blocks in the formation of carbonaceous particles such as soot. In our immediate surroundings, they are mainly generated in incomplete combustion processes and are further considered as carriers of the Unidentified Infrared Bands which are detected in a wide variety of astrophysical envelopes in the interstellar medium. Currently, astrochemical as well as combustion related models favour small resonance stabilized radicals (RSR) as major contributors to PAHs in sequential reactions. Therefore, we generated two RSR under well-defined conditions to investigate their contribution to PAH formation in a pyrolysis microreactor. The various reaction products were identified by IR/UV ion dip spectroscopy which combines the mass-selectivity of UV light with the structural sensitivity of IR radiation. Finally, we investigated the intermolecular interactions in azaphenanthrene dimers in combination with high-level theoretical calculations and found a preferential formation of pi-stacked van der Waals cluster in a molecular jet expansion.
Einzelstrang-DNA-dispergierte und individualisierte (6,5)-chirale Kohlenstoffnanoröhren bilden als Konjugatsystem den Ausgangspunkt dieser Dissertation. Im Vordergrund stehen dabei Untersuchungen zur Biokompatibilität dieser ssDNA-SWNT-Konjugate sowie deren Verhalten nach Zellpenetration und eine Funktionalisierbarkeit zum Wirkstofftransportsystem. Das erste Projekt widmet sich in Kapitel 4 dem Studium der Konjugatstabilität unter physiologischen Bedingungen und einer Verträglichkeit gegenüber zellulären Systemen. Experimente zur Biokompatibilität werden erstmals an Nanorohrkonjugaten durchgeführt, welche nach Ultrazentrifugation im Dichtegradienten sorgfältig individualisiert vorliegen. Die umgebungssensitiven photophysikalischen Charakteristika vereinzelter (6,5)-SWNTs können zu einer Beurteilung der Konjugatintegrität in physiologischem Milieu genutzt werden. Die Stabilität von ssDNA-SWNT-Strukturen wird in Anwesenheit des Restriktionsenzyms DNase I und dem in Zellnährmedien enthaltenen protein- und nukleasereichem Serum FBS auf die Probe gestellt. In beiden Fällen kann eine ausreichende ssDNA-SWNT-Integrität attestiert werden, die eine Verwendung unter Zellkultivierungsbedingungen erlaubt. Unter Berücksichtigung verschiedener in Zellen vorliegender pH-Umgebungen werden die Konjugate ebenfalls dieser Variation ausgesetzt. Bei Vorliegen stark saurer und basischer pH-Werte kann die Integrität von ssDNA-SWNT-Konjugaten nicht gewährleistet werden, was sich durch Aggregation bemerkbar macht. Innerhalb des breiten pH-Bereichs zwischen den Werten 3 und 11 hingegen kann eine gute Stabilität bestätigt werden. Für zelluläre Anwendungen bedeutet dieser Befund keine Einschränkung, da in Kulturen lediglich neutrale bis schwach saure pH-Werte oberhalb von 4.5 zu finden sind. Nachdem die Biostabilität der ssDNA-SWNT-Konjugate gewährleistet ist, kann in Zytotoxizitätsstudien eine ex vivo-Verträglichkeit des Nanomaterials getestet werden. Erste Untersuchungen mit der Mausmakrophagenlinie J774.1 weisen wie auch ausführliche Studien gegenüber menschlichen Epithelzellen HeLa auf eine uneingeschränkte Kompatibilität in den eingesetzten Konzentrationen hin. HeLa-Zellen, die mit DGU-gereinigten Nanorohrproben behandelt werden, zeigen eine geringfügig höhere Vitalität als nach Inkubation mit einer Rohdispersion undefinierter SWNT-Bündel. Im Gesamtbild ergibt sich somit eine zufriedenstellende Biokompatibilität individualisierter ssDNA-SWNT-Konjugate, womit das in dieser Arbeit zentrale Kohlenstoffnanorohrsystem den Anforderungen für dessen biomedizinische Verwendbarkeit gerecht wird. Der Schwerpunkt weiterer Untersuchungen liegt im zweiten Projekt aus Kapitel 5 auf dem Verhalten von ssDNA-SWNT-Konjugaten nach deren Aufnahme in HeLa-Zellen. Auch hier kann die starke Sensitivität der optischen Eigenschaften individualisierter (6,5)-Kohlenstoffnanoröhren gegenüber Umgebungseinflüssen genutzt werden, um Veränderungen im Emissionsverhalten von SWNTs nach deren zellulärer Aufnahme gegenüber dem Ausgangszustand zu beobachten. Nach ausführlicher Weißlicht-, Fluoreszenz- und SWNT-Photolumineszenzmikroskopie, aus deren Resultaten eine erfolgreiche Internalisierung von ssDNA-SWNTs in HeLa-Zellen eindeutig hervorgeht, stehen PL-spektroskopische Untersuchungen der Kohlenstoffnanoröhren im Vordergrund. Durch einen Vergleich des Emissionsverhaltens der ssDNA-SWNT-Konjugate in und außerhalb von Zellen können spektrale Verschiebungen, Linienverbreiterungen und verkürzte Fluoreszenzlebensdauern nach zellulärer Aufnahme festgestellt werden. Sowohl eine Aggregation von SWNTs als auch eine Beeinflussung durch die pH-Umgebung reichen nicht für eine vollständige Erklärung des Befunds aus. Vielmehr kann die in endosomalen Kompartimenten durch das Größenverhältnis von Endosomen zu SWNTs entstehende räumliche Nähe einer großen Nanorohrmenge untereinander als Ursache für eine Veränderung der dielektrischen Umgebung und folglich des Emissionsverhaltens betrachtet werden. Durch Verwendung der Kohlenstoffnanoröhren als Marker und Sensor können ssDNA-SWNT-Konjugate in Zellen somit nicht nur lokalisiert, sondern darüber hinaus hinsichtlich einer möglichen Aggregation untersucht werden. Aus den in dieser Arbeit vorgestellten Daten kann zwar eine vollständige Aggregation der SWNTs durch deren Aufnahme in Zellen ausgeschlossen werden, sie muss jedoch in geringfügigem Ausmaß neben einer Beeinflussung durch die pH-Umgebung und die große räumliche Nähe durchaus in Betracht gezogen werden. Individualisierte ssDNA-SWNT-Konjugate können damit erstmals zeitaufgelöst PL-mikrospektroskopisch in HeLa-Zellen charakterisiert werden. Für das letzte Projekt werden in Kapitel 6 neuartige Funktionalisierungsmöglichkeiten von ssDNA-SWNT-Konjugaten zu zellulären Transportsystemen unter Erhalt der photophysikalischen Eigenschaften erforscht. Dazu soll das Dispergiermittel DNA als Kupplungsstelle für eine kovalente Anbindung eines Agenz genutzt werden. Anstelle eines Wirkstoffes werden die Untersuchungen mit einem Fluorophor als Modellverbindung durchgeführt, welcher den Vorteil einer einfachen Detektierbarkeit liefert. Prinzipiell besteht die Möglichkeit, das Oligomer mit dem Fluorophor vorzufunktionalisieren und anschließend auf die Oberfläche der SWNTs zu bringen. Als effektiver erweist sich die Methode der direkten Kupplung des Farbstoffs an bereits DNA-dispergierte SWNTs. Der Erfolg in der Präparation von FluorophorssDNA- SWNT-Konjugaten wird über die Emission des Fluorophors mit entsprechenden Referenzexperimenten gemessen. Der Versuch einer Quantifizierung liefert jedoch sehr hohe Werte, die lediglich als eine obere Grenze für die gefundene Anzahl gebundener Fluorophore pro Nanoröhre angesehen werden können. Im Verlauf des Projekts kann eine Funktionalisierbarkeit der Nanoröhren über das Dispergieradditiv DNA als neue Strategie aufgezeigt werden. Im Gegensatz zu bekannten Wirkstofftransportsystemen bietet dieser Funktionalisierungsansatz den Vorteil, dass die optischen Eigenschaften der individualisierten ssDNA-SWNT-Konjugate erhalten bleiben, welche wieder um einen gleichzeitigen Einsatz der Nanoröhren als Transporter und Marker bzw. Sensor erlauben. Die vorliegende Dissertation liefert neben dieser bisher unbekannten Funktionalisierungsstrategie neue Erkenntnisse über die Biokompatibilität speziell von individualisierten ssDNA-SWNT-Konjugaten und deren Verhalten in HeLa-Zellen. Mit diesem Wissen kann der gezielte Wirkstofftransport durch Kohlenstoffnanoröhren als biokompatibles und zellgängiges Trägersystem anvisiert werden.
We report infrared spectra of xylylene isomers in the gas phase, using free electron laser (FEL) radiation. All xylylenes were generated by flash pyrolysis. The IR spectra were obtained by monitoring the ion dip signal, using a IR/UV double resonance scheme. A gas phase IR spectrum of para‐xylylene was recorded, whereas ortho‐ and meta‐xylylene were found to partially rearrange to benzocyclobutene and styrene. Computations of the UV oscillator strength for all molecules were carried out and provde an explanation for the observation of the isomerization products.
The photophysics of a molecular triad consisting of a BODIPY dye and two pyrene chromophores attached in 2-position are investigated by steady state and fs-time resolved transient absorption spectroscopy as well as by field induced surface hopping (FISH) simulations. While the steady state measurements indicate moderate chromophore interactions within the triad, the time resolved measurements show upon pyrene excitation a delocalised excited state which localises onto the BODIPY chromophore with a time constant of 0.12 ps. This could either be interpreted as an internal conversion process within the excitonically coupled chromophores or as an energy transfer from the pyrenes to the BODIPY dye. The analysis of FISH-trajectories reveals an oscillatory behaviour where the excitation hops between the pyrene units and the BODIPY dye several times until finally they become localised on the BODIPY chromophore within 100 fs. This is accompanied by an ultrafast nonradiative relaxation within the excitonic manifold mediated by the nonadiabatic coupling. Averaging over an ensemble of trajectories allowed us to simulate the electronic state population dynamics and determine the time constants for the nonradiative transitions that mediate the ultrafast energy transfer and exciton localisation on BODIPY.
Im ersten Teil wurde die Dynamik des ersten angeregten Zustandes von drei Truxenonen untersucht. Nach Anregung im sichtbaren Bereich findet ein Elektrontransfer zwischen den Triarylamin-Donor und dem Truxenon-Akzeptor statt. Um die Abhängigkeit der Rate für den Rücktransfer von der elektronischen Kopplung zu untersuchen, wurde diese zum einen über den Abstand zwischen Donor und Akzeptor und zum anderen über die Position der Verknüpfung eingestellt. In einer ersten Studie wurde Truxenon 1, bei dem der direkt über das Stickstoff-Atom an den Akzeptor gekuppelt ist, mit dem System 2 verglichen, bei den die Einheiten über einen Phenyl-Spacer verbunden sind. Der Rücktransfer sollte dabei für das System 1 schneller sein, da ein kurzer Abstand mit einer starken elektronischen Kopplung einhergeht und damit auch mit einem schnellen Elektronentransfer. Allerdings wird die große Rate für das System mit dem größeren Abstand beobachtet (2). Dieses Ergebnis kann mit der Geometrie der Moleküle und der größeren sterischen Hinderung in 1 erklärt werden, aus der eine geringere elektronische Kopplung resultiert. In einem weiteren Experiment wurde die Stärke der elektronischen Kopplung in Abhängigkeit von der Position der Verknüpfung in Bezug auf den Phenyl-Spacer untersucht. Zu diesem Zweck wurden die Systeme 2 und 3 miteinander verglichen. Während in 2 die Einheiten in para-Position verknüpft sind, sind Donor und Akzeptor in 3 in meta-Position an den Phenyl-Spacer gekuppelt. Letzteres System zeichnet sich dabei durch eine geringere Resonanzstabilisierung aus. Dies hat eine geringere elektronische Kopplung zur Folge, was sich auch in den UV/Vis-Spektren zeigt. Die langwelligste Absorption ist hier bei höheren Energien zu beobachten. Zudem deuten die transienten Spektren an, dass in erster Linie nicht der ladungsgetrennte Zustand abgeregt wird sondern vielmehr die Truxenon-Einheit selbst. Im zweiten Teil wurden die Resonanz-Raman-Spektren vier verschiedener Borole aufgenommen. Dabei wurden zwei signifikanten Moden beobachtet, die beim pi –pi∗ -Übergang in ihrer Intensität verstärkt werden. Eine Bande bei 1598 cm-1 wird der symmetrischen Ringatmung zugeordnet, die aus einer Expansion des Borol-Rings resultiert. Eine zweite Schwingung bei 1298 cm-1 resultiert aus einer B-R Streckschwingung. Für System 5 wird diese Schwingung mit einer hohen Intensität beobachtet, während die Bande bei den Systemen 6-8, die mit einem Aryl-Rest substituiert sind, mit sehr geringer Intensität auftritt und deshalb lediglich mit einem hochauflösendem Setup detektiert werden kann. Aufgrund der schwachen Resonanzverstärkung kann von einer schwachen Wechselwirkung zwischen dem Bor und dem Aryl-Rest ausgegangen werden. In Borol 5, in dem eine Ferrocen-Einheit an das Bor gebunden ist, ist die Situation eine andere: nach Anregung des pi-pi*-Übergangs wird die Population im BC_4-Ring verschoben. Dadurch kann vom Eisen keine Elektronendichte mehr in das p_z-Orbital des Bors verschoben werden, die Fe-B-Wechselwirkung wird geschwächt und der Fe-B-Abstand wird vergrößert. Zusammenfassend konnte gezeigt werden, dass die Eigenschaften des Substituenten großen Einfluss auf die elektronische Struktur eines dreifach-substituierten Bor-Atoms hat, das in einer p_z-pi-Konjugation beteiligt ist.
Die vorliegende Arbeit beschäftigt sich mit der theoretischen Untersuchung zweier Themenkomplexe: der Erzeugung Hoher Harmonischer in Molekülen und dem Einfluss von gekoppelter Elektronen-Kern-Dynamik auf Ultrakurzpuls-Ionisationsprozesse und Quantenkontrolle. Während bei der Untersuchung der Hohen Harmonischen die Auswirkungen der Kernbewegung auf die Spektren im Mittelpunkt des Interesses stehen, wird bei der Analyse der gekoppelter Elektronen-Kern-Dynamik das Hauptaugenmerk auf die nicht-adiabatischen Effekte gerichtet, die auftreten, wenn Kern- und Elektronenbewegung sich nicht, wie es im Rahmen der Born-Oppenheimer-Näherung in der Quantenchemie häufig angenommen wird, voneinander trennen lassen.
In der vorliegenden Dissertation wurden Dispergierungseffizienz, Entbündelungseffizienz und
Röhrenqualität von SWNT-Suspensionen untersucht. Die Röhrenqualität wurde durch Messung von Quantenausbeuten bewertet. Außerdem wurden Suspensionen von den drei verschiedenen Rohmaterialien CoMoCAT, Black Sand und HiPCO, hergestellt durch die Behandlung mit Ultraschall und Schermischen, verglichen.
Beim Beschallen zeigte sich wie erwartet eine höhere Dispergierungseffizienz im Vergleich zum Schermischen. Diese war jeweils bei Black Sand am größten, gefolgt von CoMoCAT und HiPCO. Ein Vergleich zwischen zwei HiPCO-Materialien bestätigte die deutlichen Effizienzvorteile
nicht aufgereinigter Materialien. Trotz der viel geringeren Dichte des aufgereinigten HiPCO-Materials, ließ sich dieses durch das Schermischen wesentlich schlechter dispergieren.
Der Effizienzunterschied war jedoch geringer als bei Black Sand und CoMoCAT, was vermutlich auf den geringeren Unterschied der Kohlenstoffanteile zurückzuführen ist. Dieser wiederum hängt von den jeweiligen Herstellungs- und Aufreinigungsverfahren ab.
Die Dispergierungsgeschwindigkeit war für gescherte Black Sand- und CoMoCAT-Proben zu Beginn der Dispergierung höher als für die jeweils beschallten Proben, weshalb durch Kombination der beiden Methoden möglicherweise eine Verbesserung der präparierten Suspensionen bezüglich der drei untersuchten Parameter erreicht werden kann.
Der Vergleich der Entbündelungseffizienzen ergab erneut Vorteile beim Ultraschall gegenüber dem Schermischen. Die beschallten Black Sand- und HiPCO-Proben zeigten hierbei noch eine deutlich effizientere Auftrennung als die Proben des aufgereinigten CoMoCAT-Materials.
Dieses enthält zu jedem Zeitpunkt der Beschallung noch einen entsprechend größeren Anteil an aggregierten Röhren. Beim Schermischen funktionierte die Entbündelung von Black Sand im Vergleich zu CoMoCAT und HiPCO mit Abstand am besten, was sich auch in den ODVerhältnissen
beschallter und gescherter Proben widerspiegelte.
Die beobachtete Quantenausbeute war bei den durch Schermischen dispergierten DGUEinzelrohrproben
um bis zu 50 % höher als bei den beschallten Proben, was auf eine deutlich niedrigere Röhrenbeschädigung und somit auch auf eine höhere Röhrenqualität hindeutete.
Dies wurde auch durch Vergleichsmessungen an Einzelröhren bestätigt. Außerdem dringt bei durch Ultraschall geschnittenen Röhren Wasser ins Röhreninnere ein, was beim Schermischen nicht der Fall ist. Das ermöglicht durch Schermischen vielleicht die Herstellung von Proben mit veränderten Eigenschaften. Beim Vergleich der Materialien zeigte HiPCO die höchste Quantenausbeute. Dieses Herstellungsverfahren liefert also im Vergleich zum
CoMoCAT-Verfahren eine bessere Röhrenqualität. Die um 70 % höheren Quantenausbeuten der Black Sand-Proben im Vergleich zu den CoMoCAT-Proben machten die Röhrenbeschädigungen
bei der Aufreinigung des Rohmaterials deutlich. Werden zudem Beschädigungen durch Ultraschall berücksichtigt, beträgt der Unterschied sogar 250 %.
Die beschallten HiPCO- und Black Sand-Proben der zeitabhängigen Messungen zeigten aufgrund der effizienten Entbündelung den schnellsten Anstieg der uantenausbeuten, welche aufgrund von Beschädigungen durch den Ultraschall, beeinflusst durch die Entbündelungsund
Dispergierungseffizienzen der Materialien, nach 10-20 min wieder abfielen. Die Quantenausbeuten der gescherten Proben stiegen entsprechend langsamer über die gesamte Messzeit von sechs Stunden an.
Die Dispergierung mittels Schermischer bei erhöhter Viskosität führte bei einem Iodixanolanteil von 45 % zu einer fast sechsfach höheren Dispergierungseffizienz im Vergleich zu Wasser.
Auch Lufteinschlüsse scheinen einen Einfluss zu haben, weshalb ein Probenvolumen zwischen 13-14 mL mit dem verwendeten Aufbau am sinnvollsten erscheint. Ob Viskosität und Lufteinschlüsse auch Entbündelungseffizienz und Röhrenqualität beeinflussen, muss noch untersucht werden.
In Kapitel 5 wurde die Dispergierung von Nanoröhren mit kationischem Perylenbisimid untersucht. Nach dem Zusammengeben von PBI-Lösung und SDS-Nanorohrsuspension wurden Flokkulationseffekte beobachtet, welche durch hohe Nanorohr- oder SDS-Konzentrationen verzögert wurden. Das ermöglichte die Herstellung von PBI-Nanorohrfilmen mit Streifenmuster durch Nutzung des Kaffeering-Effektes. Es wurde gezeigt, dass die Nanoröhren in das PBI eingebettet werden können. Allerdings waren die Streifen noch sehr unregelmäßig und die Röhren in den Streifen nicht ausgerichtet.
Die Stabilität der PBI-Nanorohrsuspensionen konnte durch einen Tensidaustausch vom anionischen SDS zum kationischen CTAB verbessert werden. Es konnte gezeigt werden, dass für die Vermeidung von Aggregationen während den dafür nötigen Dialysen unter anderem die möglichst geringe Bewegung der Probe entscheidend ist. Außerdem musste die CTABKrafft-Temperatur von 25 °C berücksichtigt werden. Unterhalb dieser Temperatur bildet das
Tensid keine Mizellen mehr, was die Suspensionen destabilisiert.
Mischexperimente von CTAB-Nanorohrsuspensionen mit Lösungen aus verschiedenen CTAB:PBI-Verhältnissen lieferten Hinweise darauf, dass CTAB alleine die Röhren nicht stabilisiern kann. Ein Grund dafür könnte eine zu geringe Anzahl an positiven Ladungen auf den Röhren sein. Demzufolge wäre immer ein gewisser Anteil an Tensid zur Stabilisierung notwendig. Trotz geringer Tensidbeimischung könnten aber Filme mit in PBI eingebetteten Röhren hergestellt werden. Unter Umständen könnten die Röhren auch in die flüssigkristalline Phase des PBIs eingebettet werden. Ein anderer Grund für die nicht ausreichende Stabilisierung könnte sein, dass die PBI-Aggregate nur sehr schlecht aufgetrennt werden.
Dann könnte das PBI-Adsorptionsverhalten durch eine Verbesserung der Aggregatauftrennung beeinflusst werden.
Zuletzt wurde in der vorliegenden Dissertation die Herstellung von Nanorohrgelfilmen beschrieben.
Neben Homogenität durch Nutzung von Gelatine und Stabilität durch Entfernung von Iodixanol sorgte eine Silikonform für eine einheitliche Dicke und Größe der präparierten (6,5)-Gelfilme. Röhrenaggregationen während der Iodixanolentfernung durch Zentrifugenfiltration
konnten auf die Alterung der verwendeten Suspensionen zurückgeführt werden. Die optischen Dichten der so hergestellten Gelfilme standen immer in ähnlichen Verhältnissen zu denen der Ausgangssuspensionen, sodass die für die Gelfilme benötigten Röhrenkonzentrationen
in den Ausgangssuspensionen relativ genau berechnet werden konnten.
Um das Iodixanol für die Herstellung von (6,5)/(6,4)-Gelfilmen effektiv aus den Suspensionen zu entfernen, wurden drei verschiedene Dialysemembranen getestet. Dabei stellte sich die Membran mit einer Porengröße von 50 kD als bester Kompromiss aus effektiver Iodixanolentfernung
und geringem Röhrenverlust heraus. Durch Einengung der (6,5)/(6,4)-Suspension konnten drei Gelfilme mit ausreichend hohen optischen Dichten hergestellt werden, wobei der dritte Film im Gegensatz zu den ersten beiden aufgrund des immer weiter abnehmenden Probenvolumens eine deutliche Röhrenaggregation zeigt. Dadurch eignen sie sich für weiterführende Experimente, wo mit Hilfe der Transienten-Absorptionsspektroskopie Untersuchungen
zu Energie- und Ladungstransferprozessen zwischen CNTs verschiedener Chiralitäten durchgeführt werden könnten.
Ziel dieser Dissertation war es zu einem besseren Verständnis hinsichtlich folgender Themen beizutragen und Möglichkeiten aufzuzeigen, mit welchen die Voraussetzungen für Anwendungen von einzelnen, funktionalisierten Kohlenstoffnanoröhren, wie u.a. Einzelphotonenquellen, erfüllt werden können.
Eine wesentliche Voraussetzung für die Funktionalisierung von einzelnen Kohlenstoffnanoröhren ist zunächst eine Probenpräparation, welche SWNT-Suspensionen mit einem hohen Anteil an vereinzelten SWNTs hoher PL-Intensität bereitstellen kann. Um solche SWNT-Suspensionen herstellen zu können, wurden drei verschiedene Rohmaterialien und Dispergiermittel auf deren Entbündelungseffizienz- und relativer Photolumineszenzquantenausbeute untersucht. Anhand von photolumineszenzspektroskopischen Untersuchungen und Messungen der Extinktion stellte sich heraus, dass in Kombination des unaufbereiteten CVD-Kohlenstoffnanorohrrußes mit dem Copolymer PFO:BPy als Dispergiermittel und einem speziell in dieser Dissertation entwickelten Herstellungsverfahren für die Mikroskopieproben, stabile (6,5)-SWNT-Suspensionen mit einem großen Anteil an einzelnen SWNTs hoher PL-Intensität, hergestellt werden können.
Letztere Suspension diente als Ausgangsmaterial für die, in dieser Dissertation neuartige, entwickelte Methodik zur Differenzierung zwischen einzelnen SWNTs und Aggregaten mittels PL- und Ramanmessungen an einem PL-Mikroskopie-Aufbau, welche eine weitere Voraussetzung für Einzelpartikelstudien darstellt. Hierbei wurden im Rahmen einer statistischen Messreihe PL- und Ramanspektren von 150 SWNT-Objekten aufgenommen und hieraus resultierend die Parameter FWHM, Energie des S1-Emissions-Zustands und relative Photolumineszenzquantenausbeute ermittelt. Schließlich konnten die zwischen einer einzelnen SWNT und einem Aggregat charakteristischen Differenzen anhand der Korrelationen zwischen den drei Parametern dargestellt werden. Zudem erfolgte eine statistische Analyse zur Bestimmung der statistischen Signifikanz dieser Korrelationen. Hierbei wurde anhand der nicht-parametrischen Spearman-Korrelationskoeffizienten und der p-Werte gezeigt, dass in Kombination dieser drei Messparameter mit einer hohen Wahrscheinlichkeit zwischen einer einzelnen SWNT und einem Aggregat differenziert werden kann. Demnach konnte eine neuartige, im Vergleich zur Literatur, praktikable Methodik zur Differenzierung zwischen einzelnen SWNTs und Aggregaten, etabliert werden, welche die Voraussetzung für Einzelrohrstudien ist.
Der Fokus dieser Dissertation ist die Entschlüsselung der Reaktionsmechanismen der Arylierung und reduktiven Alkylierung von (6,5)-SWNTs im Ensemble und auf Einzelrohrbasis. Durch diese kovalenten Funktionalisierungsverfahren entstehen neue fluoreszierende Defekt-Zustände, deren zeitabhängiges Intensitätsverhalten in der vorliegenden Arbeit näher untersucht wurde. Hinsichtlich der Arylierung von SWNTs mit Diazoniumsalzen postulieren Studien einen zweistufigen Reaktionsmechanismus, welcher durch eine kombinatorische, spektroskopische Gesamtbetrachtung im Rahmen dieser Dissertation bestätigt werden konnte. Auch konnte erstmalig in der Literatur gezeigt werden, dass die Reaktion in hohem Maße reproduzierbar ist.
Reproduzierbarkeitsstudien wurden auch im Falle der reduktiven Alkylierung unternommen, wobei erstmalig festgestellt wurde, dass diese Reaktion lediglich im hohen Maße reproduzierbar ist, sofern die Reduktionslösung mindestens 17 Stunden vor Reaktionsstart angesetzt wird. Basierend auf diesem Resultat, wurden reproduzierbare Messreihen zur Untersuchung der Reaktionsbedingungen und des Reaktionsmechanismus unternommen, da diesbezüglich unzureichend Kenntnis in der Literatur vorhanden ist.
Zur Klärung des Reaktionsmechanismus, von welchem lediglich Annahmen existieren, wurde zum einen der Einfluss der Laseranregung auf die Reaktion untersucht. Da lediglich für den Falle des Ansetzens der Reduktionslösung unmittelbar vor Messbeginn, wobei die reaktiven SO2- -Radikale erzeugt werden, ein Einfluss der Laseranregung festgestellt werden konnte, nicht jedoch im weiteren Reaktionsverlauf, ist von keiner radikalischen Reaktion im Funktionalisierungsschritt auszugehen. Dies konnte durch den Einsatz von Konstitutionsisomeren des Iodbutans bestätigt werden, wobei das Iodbutanisomer, welches im Fall einer radikalischen Reaktion die höchste Reaktivität zeigen sollte, zu keiner Funktionalisierung der SWNTs führte. Im Gegensatz hierzu, konnte durch das 1-Iodbutan, mit dem primären C-Atom, eine hohe PL-Intensität der defekt-induzierten Zustände E11- und T- verzeichnet werden, was die weitere Annahme einer SN2-Reaktion stützt.
Im Rahmen dieser Dissertation konnte zudem erstmalig entdeckt werden, dass unter deren alkalischen, reduktiven Bedingungen, eine Funktionalisierung mit Acetonitril erfolgen kann, was durch die Durchstimmung der PL-Intensität des Defektzustands bei Variation des Volumenanteils von Acetonitril bestätigt werden konnte. Hierbei gilt es jedoch weiter zu analysieren, auf welche Art die Koordination bzw. Funktionalisierung von Acetonitril an den SWNTs erfolgt, was u.a. durch Ramanmessungen untersucht werden könnte.
Auch konnten neuartige Kenntnisse bezüglich der Reaktionskinetik basierend auf den Studien dieser Dissertation erhalten werden, wobei festgestellt wurde, dass das Reaktionsprofil mit dem einer komplexen Folgereaktion angenähert werden kann.
Zudem konnten neuartige Kenntnisse aus der Thermodynamik, wie die Ermittlung der Aktivierungsenergie der Adsorption von DOC-Molekülen auf der SWNT-Oberfläche, durch die Zugabe des Tensids DOC zum Reaktionsansatz und dem hieraus resultierenden Reaktionsabbruch, erhalten werden.
Schließlich fand eine Übertragung der Ergebnisse aus den Ensemblestudien der reduktiven Alkylierung auf Einzelpartikeluntersuchungen statt, wobei letztere erstmalig im Rahmen dieser Arbeit durchgeführt wurden. Aus der statistischen Analyse, welche von Martina Wederhake durchgeführt wurde, resultierte durch Erhöhung des Stoffmengenverhältnisses von 1-Iodbutan zu Kohlenstoff eine inhomogene Steigerung des Funktionalisierungsgrades. Ausblickend gilt es nun zu prüfen, ob die zeitlichen Reaktionsverläufe der photolumineszierenden Zustände, welche aus den Ensemble-Studien erhalten wurden, auf Einzelrohrbasis reproduziert werden können.
Es lässt sich demnach festhalten, dass mithilfe der Studien dieser Dissertation ein Probenherstellungsverfahren, welches stabile SWNT-Suspensionen mit einem großen Anteil an einzelnen Kohlenstoffnanoröhren, hoher PL-Intensität ermöglicht, etabliert werden konnte. Zudem wurde eine neuartige, praktikable und statistisch signifikante Methodik zur Differenzierung zwischen einzelnen Kohlenstoffnanoröhren und Aggregaten entwickelt. Schließlich konnten neue, essentielle Informationen bezüglich des Reaktionsmechanismus und den Reaktionsbedingungen der Arylierung und reduktiven Alkylierung von halbleitenden (6,5)-SWNTs erhalten werden. Wie in der Einleitung bereits erwähnt, sind sowohl der Erhalt einer stabilen SWNT-Suspension mit einem großen Anteil an einzelnen Nanoröhren hoher PL-Intensität, die Möglichkeit der Identifizierung einzelner SWNTs, als auch ein ausgiebiges Verständnis der Reaktionsmechanismen der Funktionalisierungsreaktionen, essentielle Voraussetzungen für die Verwirklichung von Einzelphotonenquellen auf Basis einzelner, funktionalisierter Kohlenstoffnanoröhren. Diese können aufgrund derer geeigneter Emissionseigenschaften als vielversprechende Kandidaten für das Ausgangsmaterial von Einzelphotonenquellen in der Quanteninformationstechnologie angesehen werden.
Elektronische Spektroskopie und Photodissoziationsverhalten von heterocyclischen Biomolekülen
(2009)
Das Photodissoziationsverhalten der Pyrimidinbasen Thymin, Uracil und 5-Methylcytosin wurde mittels Photofragment-Dopplerspektroskopie und Photofragment-Imaging untersucht. Die Photodissoziation erfolgt in allen Fällen in einem statistischen Prozess nach Mehrphotonenabsorption. Von Purin wurde ebenfalls die Photodissoziation untersucht sowie das elektronische Spektrum des niedrigsten n-pi*-Zustands mittels Photofragment-Anregungsspektroskopie und [1+1']-REMPI-Spektroskopie gemessen. Purin zeigt bei den untersuchten Wellenlängen dasselbe Verhalten wie die Pyrimidinbasen. Das Elektronische Spektrum von Purin zeigt über einen Bereich von über 2000 cm^-1 vom Bandenursprung gut strukturierte Banden, von denen die meisten oberhalb 850 cm^-1 als Kombinationsbanden identifiziert wurden.
Energy Transfer Between Squaraine Polymer Sections: From helix to zig-zag and All the Way Back
(2015)
Joint experimental and theoretical study of the absorption spectra of squaraine polymers in solution provide evidence that two different conformations are present in solution: a helix and a zig-zag structure. This unique situation allows investigating ultrafast energy transfer processes between different structural segments within a single polymer chain in solution. The understanding of the underlying dynamics is of fundamental importance for the development of novel materials for light-harvesting and optoelectronic applications. We combine here femtosecond transient absorption spectroscopy with time-resolved 2D electronic spectroscopy showing that ultrafast energy transfer within the squaraine polymer chains proceeds from initially excited helix segments to zig-zag segments or vice versa, depending on the solvent as well as on the excitation wavenumber. These observations contrast other conjugated polymers such as MEH-PPV where much slower intrachain energy transfer was reported. The reason for the very fast energy transfer in squaraine polymers is most likely a close matching of the density of states between donor and acceptor polymer segments because of very small reorganization energy in these cyanine-like chromophores.
Die vorliegende Dissertation leistet einen Beitrag zur spektroskopischen Messmethodik nanoskaliger Strukturen. Im Mittelpunkt der Arbeit steht die Entwicklung und Erprobung eines spektrofluorimetrischen Aufbaus, mit dessen Hilfe ein aus Kohlenstoffnanoröhren und DNA-Oligomeren bestehendes supramolekulares Modellsystem einer optischen Untersuchung zugänglich gemacht wird. Die Vielseitigkeit der Messeinheit aus Mikroskop und Spektrometer wird an einer weiteren Substanzklasse untermauert. So wird das Emissionsverhalten von in Siliziumcarbidkristallen induzierten Defektzentren einer räumlich, spektral und zeitlich aufgelösten Charakterisierung unterzogen.
Die zentrale Komponente des Spektrofluorimetrieaufbaus stellt eine Superkontinuumlichtquelle dar. In Verbindung mit einem elektronisch geregelten Filtermodul zur Wellenlängenselektion erlaubt sie die Durchführung von Photolumineszenz-Anregungsexperimenten. Im Gegensatz zu kommerziell erhältlichen Systemen, die überwiegend auf eine spektroskopische Charakterisierung gelöster oder kolloidal stabilisierter Substanzen abzielen, erlaubt der hier realisierte Aufbau auch die PL- mikroskopische Untersuchung kondensierter Proben, was durch die Epi-Bauweise auch opake Substrate einschließt. Der Einsatz von InGaAs-Sensoren weitet das Detektionsfenster auf den Nahinfrarotbereich aus, sowohl hinsichtlich des Kamera- als auch des Spektroskopiekanals.
Anhand verschiedenartiger Kohlenstoffnanorohrproben, die entweder in flüssiger Phase dispergiert oder in festem Zustand als Film abgeschieden vorliegen, wird die Leistungsfähigkeit des PLE-Experiments unter Beweis gestellt. Neben der Zuordnung der Chiralitäten in polydispersen SWNT-Suspensionen wird dies auch durch die Untersuchung von Energietransferprozessen und die Studie von Umgebungseinflüssen demonstriert.
Die Charakterisierung des DNA-SWNT-Modellsystems in mikrofluidischer Umgebung macht von der fluoreszenzmikroskopischen Detektionseinheit Gebrauch. Während die intrinsische Photolumineszenz der Nanoröhren sicherstellen soll, dass Letztere in ausreichender Anzahl auf den mikrostrukturierten Substraten vorhanden sind, wird die extrinsische Photolumineszenz der funktionalisierten Oligonukleotide als spektroskopisches Maß für die DNA-Konzentration herangezogen. Das hierbei beobachtete Agglomerationsverhalten der farbstoffmarkierten Oligomere geht mit einer lokal erhöhten Fluoreszenzintensität einher und erlaubt damit die quantitative Auswertung der auf PL-Einzelbildern basierenden Zeitserien. Zugleich wird damit eine Abschätzung der DNA-Belegung auf den Nanoröhren möglich. Im Falle der aus 16 alternierenden Guanin-Thymin-Einheiten bestehenden Basensequenz lösen sich nach Initiieren des Desorptionsvorgangs ein Großteil der Oligomere von der Nanorohroberfläche ab. Lediglich ein Fünftel bleibt in adsorbierter Form zurück, was sich jedoch für die Hybridstabilität als ausreichend erweist. Die Freisetzung weiterer Oligomere bleibt bei der Versuchstemperatur von 20 °C trotz der hohen Verdünnung aus, da aufgrund des größeren Interadsorbatabstands und der damit verbundenen Abnahme repulsiver Wechselwirkungen die Aktivierungsbarriere für ihre Desorption steigt. Die Stabilität der DNA-SWNT-Konjugate liegt demnach in ihrer kinetischen Inertheit begründet, die sie vor einer Reaggregation bewahrt.
Die Studie der in Siliziumcarbid induzierten Fehlstellendefekte kann als Beleg für die breite Anwendbarkeit des spektrofluorimetrischen Aufbaus gelten. PL-Mikroskopaufnahmen zeigen hierbei, dass die Anzahl der Defektzentren mit der Bestrahlungsintensität kontrolliert werden kann – von einer kontinuierlichen Verteilung bei hohen Strahlungsintensitäten über heterogene Defektansammlungen bis hin zu Einzeldefektstellen bei niedrigen Strahlungsdosen. Letztere resultieren in beugungsbegrenzten Signaturen und erlauben damit eine Charakterisierung des abbildenden Systems sowie des Anregungsfokus. Anhand der PLE-Analyse lässt sich das Absorptionsmaximum abschätzen. Aussagen zur zeitlichen Entwicklung des Emissionsverhaltens werden durch TCSPC-Messungen erhalten. Die abschließende Untersuchung des Photonenflusses mit Hilfe von Korrelationsexperimenten nach Hanbury Brown-Twiss zeigt bei Raumtemperatur kein Auftreten von Photonantibunching.
The understanding of excimer formation and its interplay with the singlet-correlated triplet pair state \(^{1}\)(TT) is of high significance for the development of efficient organic electronics. Here, we study the photoinduced dynamics of the tetracene dimer in the gas phase by time-resolved photoionisation and photoion imaging experiments as well as nonadiabatic dynamics simulations in order to obtain mechanistic insight into the excimer formation dynamics. The experiments are performed using a picosecond laser system for excitation into the S\(_{2}\) state and reveal a biexponential time dependence. The time constants, obtained as a function of excess energy, lie in the range between ≈10 ps and 100 ps and are assigned to the relaxation of the excimer on the S\(_{1}\) surface and to its deactivation to the ground state. Simulations of the quantum-classical photodynamics are carried out in the frame of the semi-empirical CISD and TD-lc-DFTB methods. Both theoretical approaches reveal a dominating relaxation pathway that is characterised by the formation of a perfectly stacked excimer. TD-lc-DFTB simulations have also uncovered a second relaxation channel into a less stable dimer conformation in the S\(_{1}\) state. Both methods have consistently shown that the electronic and geometric relaxation to the excimer state is completed in less than 10 ps. The inclusion of doubly excited states in the CISD dynamics and their diabatisation further allowed to observe a transient population of the \(^{1}\)(TT) state, which, however, gets depopulated on a timescale of 8 ps, leading finally to the trapping in the excimer minimum.
Excitation energy transport in DNA modelled by multi-chromophoric field-induced surface hopping
(2020)
Absorption of ultraviolet light is known as a major source of carcinogenic mutations of DNA. The underlying processes of excitation energy dissipation are yet not fully understood. In this work we provide a new and generally applicable route for studying the excitation energy transport in multi-chromophoric complexes at an atomistic level. The surface-hopping approach in the frame of the extended Frenkel exciton model combined with QM/MM techniques allowed us to simulate the photodynamics of the alternating (dAdT)10 : (dAdT)10 double-stranded DNA. In accordance with recent experiments, we find that the excited state decay is multiexponential, involving a long and a short component which are due to two distinct mechanisms: formation of long-lived delocalized excitonic and charge transfer states vs. ultrafast decaying localized states resembling those of the bare nucleobases. Our simulations explain all stages of the ultrafast photodynamics including initial photoexcitation, dynamical evolution out of the Franck-Condon region, excimer formation and nonradiative relaxation to the ground state.
We present a joint theoretical and experimental study of excited state dynamics in pure and hydrated anionic gold clusters Au\(^-_3\)[H\(_2\)O]\(_n\) (n = 0-2). We employ mixed quantum-classical dynamics combined with femtosecond time-resolved photoelectron spectroscopy in order to investigate the influence of hydration on excited state lifetimes and photo-dissociation dynamics. A gradual decrease of the excited state lifetime with the number of adsorbed water molecules as well as gold cluster fragmentation quenching by two or more water molecules are observed both in experiment and in simulations. Non-radiative relaxation and dissociation in excited states are found to be responsible for the excited state population depletion. Time constants of these two processes strongly depend on the number of water molecules leading to the possibility to modulate excited state dynamics and fragmentation of the anionic cluster by adsorption of water molecules.
In this thesis the excited-state dynamics of radicals and biradicals were characterized with femtosecond pump-probe spectroscopy.
These open-shell molecules play important roles as combustion intermediates, in the formation of soot and polycyclic aromatic hydrocarbons, in atmospheric chemistry and in the formation of complex molecules in the interstellar medium and galactic clouds. In these processes molecules frequently occur in some excited state, excited either by thermal energy or radiation. Knowledge of the reactivity and dynamics of these excited states completes our understanding of these complex processes.
These highly reactive molecules were produced via pyrolysis from suitable precursors and examined in a molecular beam under collision-free conditions. A first laser now excites the molecule, and a second laser ionizes it. Time-of-flight mass spectrometry allowed a first identification of the molecule, photoelectron spectroscopy a complete characterization of the molecule - under the condition that the mass spectrum was dominated by only one mass. The photoelectron spectrum was obtained via velocity-map imaging, providing an insight in the electronic states involved. Ion velocity map imaging allowed separation of signal from direct ionization of the radical in the molecular beam and dissociative photoionization of the precursor. During this thesis a modified pBasex algorithm was developed and implemented in python, providing an image inversion tool without interpolation of data points. Especially for noisy photoelectron images this new algorithm delivers better results.
Some highlighted results:
• The 2-methylallyl radical was excited in the ππ*-state with different internal energies using three different pump wavelengths (240.6 , 238.0 and 236.0 nm). Ionized with 800 nm multi-photon probe, the photoelectron spectra shows a s-Rydberg fingerprint spectrum, a highly positive photoelectron anisotropy of 1.5 and a bi-exponential decay ( τ1= 141\pm43 fs, τ2= 4.0\pm0.2 ps for 240.6 nm pump), where the second time-constant shortens for lower wavelengths. Field-induced surface hopping dynamics calculations confirm that the initially excited ππ*-state relaxes very fast to an s-Rydberg state (first experimentally observed time-constant), and then more slowly to the first excited state/ground state (second time-constant). With higher excitation energies the conical intersection between the s-Rydberg-state and the first excited state is reached faster, resulting in shorter life-times.
• The benzyl radical was excited yith 265 nm and probed with two wavelengths, 798 nm and 398 nm. Probed with 798 nm it shows a bi-exponential decay (\tau_{1}=84\pm5 fs, \tau_{2}=1.55\pm0.12 ps), whereas with 398 nm probe only the first time-constant is observed (\tau_{1}=89\pm5 fs). The photoelectron spectra with 798 nm probe is comparable to the spectrum with 398 nm probe during the first 60 fs, at longer times an additional band appears. This band is due to a [1+3']-process, whereas with 398 nm only signal from a [1+1']-process can be observed. Non-adiabatic dynamic on the fly calculations show that the initially excited, nearly degenerate ππ/p-Rydberg-states relax very fast (first time-constant) to an s-Rydberg state. This s-Rydberg state can no longer be ionized with 398 nm, but with 798 nm ionization via intermediate resonances is still possible. The s-Rydberg state then decays to the first excited state (second time-constant), which is long-lived.
• Para-xylylene, excited with 266 nm into the S2-state and probed with 800 nm, shows a bi-exponential decay (\tau_{1}=38\pm7 fs, \tau_{2}=407\pm9 fs). The initially excited S2-state decays quickly to S1-state, which shows dissociative photoionization. The population of the S1-state is directly visible in the masses of the dissociative photoionization products, benzene and the para-xylylene -H.
• Ortho-benzyne, produced via pyrolysis from benzocyclobutendione, was excited with 266 nm in the S2 state and probed with 800 nm. In its time-resolved mass spectra the dynamic of the ortho-benzyne signal was superposed with the dynamics from dissociative photoionization of the precursor and of the ortho-benzyne-dimer. With time-resolved ion imaging gated on the ortho-benzyne these processes could be seperated, showing that the S2-state of ortho-benzyne relaxes within 50 fs to the S1-state.
This thesis gives insights into the real-time dynamics of several free carbenes and radicals on a femtosecond and nanosecond time scale. The experiments were performed with radicals, singlet carbenes and triplet carbenes of various sizes. Several neutral excited states as well as the ionic ground state were characterized. Despite the relevance of such reactive intermediates in almost all chemical reactions, only relatively little experimental information on such systems is found in the literature. This is linked to the experimental challenge of producing such species under isolated conditions. The intermediates are formed from precursor molecules under interaction- free conditions by supersonic jet flash pyrolysis. The precursor molecules were synthetically designed to show clean thermal dissociation into one specific intermediate. A large variety of spectroscopic techniques was applied to study the intermediates. Each method augments the results of the other methods. This enabled to successfully approach the main goal of this thesis: to understand the excited-state dynamics of organic intermediates. The excited states were found to deactivate rapidly to the hot ground state. The observed fast decay is presumably linked to coupled electronically excited states and relaxation takes place by internal conversion or conical intersections. Further reactions then take place on the ground state surface. Absorption spectra, photodissociation dynamics, photoelectron spectra, ionization potentials, excited-state lifetimes and dissociative photoionization were elucidated by the measurements. Pulsed and continuous light sources were used over a large spectral range (UV, Vis, VUV). A well-defined amount of energy was deposited into the molecule. After internal conversion has taken place, a microcanonical ensemble of reactive intermediates can be studied. This data helps to understand the energetics and reaction channels of intermediates. Velocity map imaging enabled to monitor the pyrolysis efficiency in real time by analyzing photoion images. This observation facilitates clean intermediate generation. Experimental results were compared to quantum chemical calculations to aid the interpretation as well as to test the performance of theoretical approaches. Hydrocarbon radicals and carbenes are regarded as benchmark systems for computational methods due to their several low-lying electronic states and open-shell electronic configuration. The experimental data can help to identify and understand the contributions of the examined intermediates to the chemistry of high energy environments (e. g., hydrocarbon cracking reactors, interstellar space and combustion chambers). Here increased numbers of hydrocarbon intermediates are often present and usually have a strong impact on the overall reaction mechanism. Such environments contain in general a complex mixture of several different intermediates. The more spectroscopic and dynamic properties of each isolated intermediate are known, the easier it is to identify it among multiple components and to understand how it contributes to the overall reaction mechanism. Electronic excitation can take place by radiation, particle collisions or thermally at very high temperatures. How excited states influence the reaction mechanisms is still a matter of currant research.
We employ transient absorption from the deep-UV to the visible region and fluorescence upconversion to investigate the photoinduced excited-state intramolecular proton-transfer dynamics in a biologically relevant drug molecule, 2-acetylindan-1,3-dione. The molecule is a ß-diketone which in the electronic ground state exists as exocyclic enol with an intramolecular H-bond. Upon electronic excitation at 300 nm, the first excited state of the exocyclic enol is initially populated, followed by ultrafast proton transfer (≈160 fs) to form the vibrationally hot endocyclic enol. Subsequently, solvent-induced vibrational relaxation takes place (≈10 ps) followed by decay (≈390 ps) to the corresponding ground state.
This work focuses on theoretical approaches for predicting the valence and core excited states of aggregate systems. For the valence excitations, TD-HF and TD-DFT with different functionals have been tested at the Perylene bisimide (PBI) system. A simple character analysis method based on the calculated transition dipole moments is proposed. However, this method does not work for excited states without any transition dipole moment. Thus, we proposed a more general and more valid method based on a calculated CIS type wavefunction for the character analysis. Furthermore, a model Hamiltonian method is derived from a localized picture. The energies of the diabatic states and the corresponding coupling parameters were also determined on the basis of ab initio calculations. For the core excitation, three different methods were validated for C 1s-excited and ionized states if several small molecules. Also we tested the basis sets dependence of these core excited states. Based on those results, we chose the frozen core approximation method to evaluate the core excited states of NTCDA molecules. In order to explain the findings in the experiments, we developed an algorithm to evaluate the exciton coupling parameter where non-orthogonal MOs are used.
A site specific perturbation of a photo-excited molecular aggregate can lead to a localization of excitonic energy. We investigate this localization dynamics for laser-prepared excited states. Changing the parameters of the electric field significantly influences the exciton localization which offers the possibility for a selective control of this process. This is demonstrated for aggregates possessing a single vibrational degree of freedom per monomer unit. It is shown that the effects identified for the molecular dimer can be generalized to larger aggregates with a high density of vibronic states.
Excitons in the molecular aggregates of chromophores are key participants in important processes such as photosynthesis or the functioning of organic photovoltaic devices. Therefore, the exploration of exciton dynamics is crucial. Here we report on exciton localization during excited-state dynamics of the recently synthesized tetracene trimer [Liu et al., Org. Lett., 2017, 19, 580]. We employ the surface hopping approach to nonadiabatic molecular dynamics in conjunction with the long-range corrected time-dependent density functional tight binding (LC-TDDFTB) method [Humeniuk and Mitrić, Comput. Phys. Commun., 2017, 221, 174]. Utilizing a set of descriptors based on the transition density matrix, we perform comprehensive analysis of exciton dynamics. The obtained results reveal an ultrafast exciton localization to a single tetracene unit of the trimer during excited-state dynamics, along with exciton transfer between units.
We report the synthesis and spectroscopic analysis of RNA containing the barbituric acid merocyanine rBAM2 as a nucleobase surrogate. Incorporation into RNA strands by solid-phase synthesis leads to fluorescence enhancement compared to the free chromophore. In addition, linear absorption studies show the formation of an excitonically coupled H-type dimer in the hybridized duplex. Ultrafast third- and fifth-order transient absorption spectroscopy of this non-fluorescent dimer suggests immediate (sub-200 fs) exciton transfer and annihilation due to the proximity of the rBAM2 units.
The design of ordered arrays of metal nanoclusters such as for example 2D cluster organic frameworks might open a new route towards the development of materials with tailored optical properties. Such systems could serve as plasmonically enhanced light-harvesting materials, sensors or catalysts. We present here a theoretical approach for the simulation of the optical properties of ordered arrays of metal clusters that is based on the ab initio parametrized Frenkel exciton model. We demonstrate that small atomically precise silver clusters can be assembled in one- and two-dimensional arrays on suitably designed porphyrin templates exhibiting remarkable optical properties. By employing explicit TDDFT calculations on smaller homologs, we show that the intrinsic optical properties of metal clusters are largely preserved but undergo J- and H-type excitonic coupling that results in controllable splitting of their excited states.
Furthermore, ab initio parameterized Frenkel exciton model calculations allow us to predict an energetic splitting of up to 0.77 eV in extended two-dimensional square arrays and 0.79 eV in tilted square aggregates containing up to 25 cluster-porphyrin subunits.
The scope of computational chemistry can be broadened by developing new methods and more efficient algorithms. However, the evaluation of the applicability of the methods for the different fields of chemistry is equally important. In this thesis systems with an unusual and complex electronic structure, such as excitonic states in organic semiconductors, a boron-containing bipolaron and the excited states of pyracene were studied and the applicability of the toolkit of computational chemistry was investigated. Concerning the organic semiconductors the focus was laid on organic solar cells, which are one of the most promising technologies with regard to satisfying the world's need for cheap and environmentally sustainable energy. This is due to the low production and material costs and the possibility of using flexible and transparent devices. However, their efficiency does still not live up to the expectations. Especially the exciton diffusion lengths seem to be significantly too short. In order to arrive at improved modules, a fundamental understanding of the elementary processes occurring in the cell on the molecular and supramolecular level is needed. Computational chemistry can provide insight by separating the different effects and providing models for predictions and prescreenings. In this thesis, the focus was laid on the description of excitonic states in merocyanines and perylene-based dyes taking the influence of the environment into account.
At first, the photochemical isomerization between two configurations of 6-nitro BIPS observed experimentally was studied by first benchmarking several functionals against SCS-ADC(2) in the gas phase and subsequently calculating the excited-state potential energy surface. The geometries obtained from a relaxed scan in the ground state as well as from a scan in the excited state were used. The environment was included using different polarizable continuum models. It was shown that the choice of the model and especially the question of the state specificity of the approach is of vital importance. Using the results of the calculations, a two-dimensional potential energy surface could be constructed that could be used to explain the experimental findings. Furthermore, the importance of the excited-state isomerization as a potential deactivation channel in the exciton transport was pointed out.
Then the assessment of the suitability of different merocyanines for optoelectronic applications with quantum-chemical methods was discussed. At first, the effect of the environment on the geometry, especially on the bond length alternation pattern, was investigated. It was shown that the environment changes the character of the ground-state wave function of several merocyanines qualitatively, which means that the results of gas-phase calculations are meaningless - at least when a comparison with solution or device data is desired. It was demonstrated that using a polarizable continuum model with an effective epsilon, a qualitative agreement between the calculated geometry and the geometry in the crystal structure can be obtained. Therefore, by comparing the bond length alternation in solution and in the crystal, a rough estimate of the effect of the crystal environment can be made.
It was further shown that the connection between the HOMO energy and the open-circuit voltage is not as simple as it is often implied in the literature. It was discussed that it is not clear whether the HOMO of a single molecule or a $\pi$-stack containing several monomers should be used and if the environmental charges of the bulk phase or the interface should be included. Investigating the dependence of the HOMO energy on the stack size yielded no definitive trend. Furthermore, it was discussed that the effect due the optimization of the modules (solvent, bulk heterojunction) during the production masks any potential correlation between the HOMO energy and measured open-circuit values. Therefore, a trend can only be expected for unoptimized bilayer cells. It was concluded that ultimately, the importance of the HOMO energy should not be overestimated.
The correlation between the exciton reorganization energy and the so-called cyanine limit, which is predicted by a simple two-state model, was also discussed. By referring to the results of VB calculations, it was discussed that the correlation indeed exists and is non-negligible, although the effect is not as strong as one might have expected. In this context, a potential application of a VB/MM approach was covered briefly. The importance of the molecular reorganization energy and the device morphology was also discussed.
It was concluded that the optimization of merocyanines for organic optoelectronic devices is inherently a multiparameter problem and one cannot expect to find one particular parameter, which solely controls the efficiency.
The perylene-based dyes were studied with a focus on the description of a potential trapping mechanism involving an intermolecular motion in a dimer. The aim was to find methods which can be applied to larger model systems than a dimer and take the effect of the environment into account. As a test coordinate the longitudinal shift of two monomers against each other was used. At first, it was demonstrated how the character of an excited state in a dimer can be defined and how it can be extracted from a standard quantum-chemical calculation. Then several functionals were benchmarked and their applicability or failure was rationalized using the character analysis. Two recipes could be proposed, which were applied to a constraint optimization (only intermolecular degrees of freedom) in the excited states of the PBI dimer and to the description of the potential energy surfaces of ground and excited states along a longitudinal displacement in the perylene tetramer, respectively.
It was further demonstrated that the semi-empirical OMx methods fail to give an accurate description of the excited-state potential energy surfaces as well as the ground-state surface along the test coordinate. This failure could be attributed to an underestimation of overlap-dependent terms. Consequently, it could be shown that the methods are applicable to large intermolecular distances, where the overlap is negligible. The results of DFT calculations with differently composed basis sets suggested that adding an additional single p-function for each atom should significantly improve the performance.
QM/MM methods are ideally suited to take the effect of the environment on a a dimer model system into account. However, it was shown that standard force fields also give an incorrect description of the interaction between the monomers along the intermolecular coordinate. This failure was attributed to the isotropic atom-atom interaction in the repulsion term of the Lennard-Jones potential. This was corroborated using two simple proof-of-principle anisotropy models. Therefore, a novel force field called OPLS-AA_O was presented that is based on OPLS-AA, but uses an anisotropic model for the repulsion. The model involves the overlap integral between the molecular densities, which are modeled as a sum of atom-centered p-type Gaussian functions. It was shown that using this force field an excellent agreement with the DFT results can be obtained when the correct parameters are used. These parameters, however, are not very generalizable, which was attributed to the simplicity of the model in its current state (using the same exponential parameter for all atoms). As a short excursion, the applicability of an MO-based overlap model was discussed.
It was demonstrated that the repulsion term based on the density overlap can be used to correct the failure of the OMx methods for the ground states. This is in accord with the assumption that an underestimation of the overlap terms is responsible for the failure.
It was shown that OPLS-AA_O also gives an excellent description of the longitudinal shift in a PBI tetramer. Using the tetramer as a test system and applying the recipe obtained in the TDDFT benchmark for the QM-part and OPLS-AA_O for the MM-part in conjunction with an electrostatic embedding scheme, a QM/MM description of the excited states of the PBI dimer including the effect of the environment could be obtained.
In the last chapter the theoretical description of the Bis(borolyl)thiophene dianion and the excited states of pyracene were discussed. The electronic structure of the Bis(borolyl)thiophene dianion - a negative bipolaron - was elucidated using DFT and CASPT2 methods. Furthermore, an estimation of the extent of triplet admixture to the ground state due to spin-orbit coupling was given.
In the second project the S1 and S2 states of pyracene were computed using SCS-CC2 and SCS-ADC(2) and an estimation for the balance between aromaticity and ring strain was given. This also involved computing the vibrational frequencies in the excited states.
In both studies the results of the computations were able to rationalize and complete experimental results.
Background: Cyclic aminals are core features of natural products, drug molecules and important synthetic intermediates. Despite their relevance, systematic investigations into their stability towards hydrolysis depending on the pH value are lacking.
Results: A set of cyclic aminals was synthesized and their stability quantified by kinetic measurements. Steric and electronic effects were investigated by choosing appropriate groups. Both molecular mechanics (MM) and density functional theory (DFT) based studies were applied to support and explain the results obtained. Rapid decomposition is observed in acidic aqueous media for all cyclic aminals which occurs as a reversible reaction. Electronic effects do not seem relevant with regard to stability, but the magnitude of the conformational energy of the ring system and pK a values of the N-3 nitrogen atom.
Conclusion: Cyclic aminals are stable compounds when not exposed to acidic media and their stability is mainly dependent on the conformational energy of the ring system. Therefore, for the preparation and work-up of these valuable synthetic intermediates and natural products, appropriate conditions have to be chosen and for application as drug molecules their sensitivity towards hydrolysis has to be taken into account.
We use pump-repump-probe transient absorption spectroscopy to investigate the role of higher-lying electronic states in the photochemistry of a molecular switch. Moreover, replacing the pump pulse by a pulse-shaper-generated phase-stable double pulse, triggered-exchange two-dimensional (TE2D) electronic spectroscopy is established in the visible regime.
Reactive hydrocarbon molecules like radicals, biradicals and carbenes are not only key players in combustion processes and interstellar and atmospheric chemistry, but some of them are also important intermediates in organic synthesis. These systems typically possess many low-lying, strongly coupled electronic states. After light absorption, this leads to rich photodynamics characterized by a complex interplay of nuclear and electronic motion, which is still not comprehensively understood and not easy to investigate both experimentally and theoretically. In order to elucidate trends and contribute to a more general understanding, we here review our recent work on excited-state dynamics of open-shell hydrocarbon species using time-resolved photoelectron spectroscopy and field-induced surface hopping simulations, and report new results on the excited-state dynamics of the tropyl and the 1-methylallyl radical. The different dynamics are compared, and the difficulties and future directions of time-resolved photoelectron spectroscopy and excited state dynamics simulations of open-shell hydrocarbon molecules are discussed.
Zahlreiche theoretische und experimentelle Untersuchungen haben erwiesen, dass in halbleitenden Kohlenstoffnanoröhren durch Absorption von Licht hauptsächlich Exzitonen erzeugt werden. Die photophysikalischen Eigenschaften und insbesondere die Prozesse nach der optischen Anregung sind aber gegenwärtig noch nicht vollständig verstanden. Zeitaufgelöste Spektroskopie bietet die Möglichkeit, diese Prozesse zu verfolgen und somit detaillierten Einblick in das photophysikalische Verhalten von Kohlenstoffnanoröhren zu nehmen. Hierbei scheinen auch extrinsische Faktoren - zu nennen sind die Herstellungsmethode, die Art der Probenpräparation, der Aggregationsgrad sowie der durch das Lösungs- bzw. Dispersionsmittel bedingte Einfluss - eine entscheidende Rolle zu spielen.
In dieser Dissertation wurden die Exzitonengröße sowie die exzitonische Dynamik in einwandigen Kohlenstoffnanoröhren mittels transienter Absorptionsspektroskopie sowie stationärer und zeitaufgelöster Photolumineszenzmessungen untersucht. Alle Experimente fanden dabei an halbleitenden (6,5)-Kohlenstoffnanoröhren statt, deren chirale Anreicherung durch Dichtegradientenultrazentrifugation gelang. Für die temperaturabhängigen Messungen wurde ein Verfahren zur Herstellung von tensidstabilisierten Gelatinefilmen entwickelt. Diese zeichnen sich durch eine hohe Temperaturstabilität bei gleichzeitiger Minimierung von Streulichteffekten aus.
Die Bestimmung der Exzitonengröße erfolgte mit Hilfe des Phasenraumfüllmodells, das die intensitätsabhängige Änderung der Oszillatorstärke eines Übergangs mit der Exzitonengröße verknüpft. Hierfür wurden leistungsabhängige Messungen der transienten Absorption durchgeführt und die Signalintensität des Photobleichens gegen die absorbierte Photonenflussdichte aufgetragen. Da diese beiden Größen nur bei geringer Exzitonendichte in einer linearen Beziehung stehen, aus der sich die Exzitonengröße berechnen lässt, wurde im Experiment besonderer Wert auf niedrige Anregungsfluenzen und deren exakte Bestimmung gelegt. Um den Einfluss der Aggregation quantifizieren zu können und den Vergleich mit der Literatur zu erleichtern, fanden die Untersuchungen sowohl an individualisierten als auch an aggregierten Röhrenproben statt. Die Datenanalyse, bei der erstmalig die stimulierte Emission sowie der spektrale Überlapp von Photoabsorptions- und Photobleichbande Berücksichtigung fanden, ergab für individualisierte (6,5)-Nanoröhren einen Wert von 12.0 nm für die Größe des S1-Exzitons, während diese bei der aggregierten Röhrenprobe nur 5.6 nm beträgt. Die Probenabhängigkeit der Exzitonengröße macht den Vergleich mit anderen experimentell ermittelten Werten schwierig. Diese liegen fast ausschließlich zwischen 1 nm und 4.5 nm, ihre Bestimmung fand aber teilweise an stark aggregierten bzw. polydispersen Proben statt. Theoretische Berechnungen liefern für die Exzitonengröße Werte zwischen 1 nm und 4 nm. Zwar gelten einige der Berechnungen für Vakuum, was verglichen zu einer experimentell in Lösung bzw. im Film bestimmten Exzitonengröße einen kleineren Wert mit sich bringt, jedoch kann allein hierdurch die Diskrepanz zu der in dieser Arbeit ermittelten Exzitonengröße von 12.0 nm nicht erklärt werden. Setzt man experimentell und theoretisch für Vakuum bestimmte Werte für die Exzitonengröße und die Bindungsenergie in einen einfachen Zusammenhang, entspricht eine Exzitonengröße von 12.0 nm einer Bindungsenergie zwischen 0.21 eV und 0.27 eV. Die mittels Zweiphotonenexperimenten ermittelten Werte für die Bindungsenergie von (6,5)-Kohlenstoffnanoröhren befinden sich zwischen 0.37 eV und 0.42 eV; diese wurden allerdings unter Zuhilfenahme eines vereinfachten zylindrischen Modells abgeschätzt. Weitere experimentelle und theoretische Untersuchungen könnten klären, inwieweit eine exzitonische Bindungsenergie zwischen 0.21 eV und 0.27 eV für (6,5)-SWNTs in Betracht kommt.
Strahlender und nichtstrahlender Zerfall in den Grundzustand scheinen in (6,5)-Kohlenstoffnanoröhren durch eine Dynamik zwischen verschiedenen Zuständen sowie durch die Diffusion der Exzitonen beeinflusst zu werden. Um diese für die Rekombination maßgeblichen Prozesse besser zu verstehen, wurden temperaturabhängige Messungen der stationären und zeitaufgelösten Photolumineszenz sowie der transienten Absorption durchgeführt. Die Ergebnisse der stationären PL-Experimente deuten darauf hin, dass die Exzitonen zwischen dem optisch aktiven Singulettzustand mit A2-Symmetrie - im Folgenden mit [B] bezeichnet - und einem energetisch tiefer liegenden dunklen Zustand [D] gestreut werden. Mit einem Wert von 5 meV für die energetische Aufspaltung zwischen [B] und [D] gelingt eine gute Anpassung an die Daten, was mit Blick auf die Bandstruktur von (6,5)-SWNTs vermuten lässt, dass es sich bei [D] um den A1-Singulettzustand handelt. Außerdem scheint eine nichtthermische Verteilung der Exzitonen auf [B] und [D] vorzuliegen, wobei strahlende Rekombination nur vom Zustand [B] aus möglich ist. Mit diesen Annahmen kann das temperaturabhängige Verhalten der stationären Photolumineszenz modelliert werden, die Ergebnisse der zeitaufgelösten PL-Messungen jedoch nicht. Mit einem rein diffusionsdominierten Modell gelingt dies ebenso wenig, so dass zur Interpretation des PL-Zerfalls vermutlich ein Modell entwickelt werden muss, in dem sowohl die Streuung der Exzitonen zwischen [B] und [D] als auch das durch Diffusion bedingte Löschen an Defektstellen oder Röhrenenden Berücksichtigung findet. Die Bedeutung der Diffusion von Exzitonen zu Defektstellen oder Röhrenenden, an denen bevorzugt nichtstrahlender Zerfall stattfindet, kann durch spektral- und zeitaufgelöste PL-Messungen belegt werden. Abhängig von der zur Verfügung stehenden thermischen Energie und der Höhe der Potenzialbarrieren des untersuchten Systems kann die Diffusion niederenergetischer Exzitonen, die sich in Potenzialminima befinden, soweit eingeschränkt werden, dass diese eine fast bis um den Faktor zwei längere PL-Lebensdauer aufweisen als höherenergetische Exzitonen. Das unterschiedliche Verhalten von transienter Absorption und zeitaufgelöster Photolumineszenz bei Temperaturen zwischen 14 K und 35 K zeigt, dass die Repopulation des Grundzustands hauptsächlich von einem anderen Zustand aus erfolgt als die strahlende Rekombination. Ob es sich hierbei aber um den mit [D] bezeichneten A1-Singulettzustand oder einen anderen dunklen Zustand handelt, kann nicht abschließend geklärt werden.
Aufgrund inhomogener Verbreiterung stellt die Halbwertsbreite der Banden im Absorptionsspektrum ein Maß für die Höhe der Potenzialbarrieren bzw. für die energetische Verteilung der Exzitonen im angeregten Zustand dar. In dieser Arbeit wurde anhand vier verschiedener Nanorohrsuspensionen gezeigt, dass Sättigungsverhalten der transienten Absorption von (6,5)-Kohlenstoffnanoröhren und Bandenbreite im Absorptionsspektrum demselben Trend folgen. Begründen kann man dies damit, dass das Sättigungsverhalten der transienten Absorption durch Exziton-Exziton-Annihilation bestimmt wird. Aufgrund ihrer eindimensionalen Struktur unterliegen Kohlenstoffnanoröhren einer starken Beeinflussung durch die Umgebung. Abhängig vom Lösungs- bzw. Dispersionsmittel resultiert eine unterschiedliche inhomogene Verbreiterung der Absorptionsbanden und damit unterschiedlich hohe Potenzialbarrieren im angeregten Zustand. Niedrige Potenzialbarrieren erlauben eine weitreichende Diffusion der Exzitonen, sodass effiziente Exziton-Exziton-Annihilation schon bei einer vergleichsweise geringen Exzitonendichte stattfindet und das Signal der transienten Absorption bei einer niedrigen Impulsfluenz sättigt.
In summary, we have prepared single-wall carbon nanotube (SWNT) thin films by the method of evaporation-induced self-assembly (EISA). Using the scalable two-plate or lens setups, sorts of different film types or patterns of SWNTs has been successfully fabricated directly from the evaporation of solvents and could be precisely controlled by the concentrations of SWNT in ambient conditions. The special geometry of meniscus as the capillary bridge has not only given rise to a much higher efficiency of fabrication than what previously reported but also allowed us to monitor the pinning and depinning process carefully and further investigate the mechanism underlying the formation of different film morphologies.
In contrast with the conventional "stick-slip" model, we have provided the new dynamical pinning and zipping model for the contact line (CL) behavior. By analyzing the motion of CL and varying deposited patterns, the traditionally so-called "stick" state should be treated as a dynamical pinning process due to the interfacial tension contrast between SWNT-covered and bare silicon surface. Besides, the plausible one-step "slip" motion could be dominated by the zipping-like kink propagation.
In addition, the experiments with heated substrates at higher temperatures between 30°C and 50 °C have shown that the striped pattern could be fabricated by both much lower SWNT and SDS concentrations than that in room temperature, which is consistent with our model of interfacial tension contrast. In this situation, the deposition rate was increased but the quality of SWNT alignment was undermined because the corresponding moving velocity of SWNT was also too fast for SWNTs to rotate when the evaporative rate was high.
The similar results were identified by the SWNT/polymer conjugates dispersed in chloroform under the similar setups and other identical conditions. The typical breathing motion of dynamical pinning and zipping-like propagation for depinning were confirmed by the new suspensions despite that some morphological parameters changed dramatically compared with that from the aqueous solution. For example, the spacing between stripes reached 100 µm ~ 200 µm because the large contact angle contrast between HDMS- and SWNT-covered surface accompanies with the high evaporation rate of chloroform in the pinning and depinning process. Likewise the average CL velocity for fabrication reached around 20 µm/s due to the much higher evaporation rate of chloroform than water.
Using alike suspensions, the modified EISA method called dose-controlled floating evaporative self-assembly (DFES) was employed to implement the self-assembly of SWNTs on the water/air interface and then deposit them on solid substrate by directed floating. Although the stripes were fabricated successfully by drops with certain doses and SWNT concentrations, there inevitably existed randomly oriented SWNTs from the water surface that built networks between the stripes containing well-aligned tubes. In order to slow down the evaporation rate and monitor the process detailedly, we used chlorobenzene as the solvent instead of chloroform and find the typical pinning/depinning movement of the CL. A preliminary analysis of the results in terms of chlorobenzene implied that the CL possibly followed the similar pinning/depinning process in consistence with our model with capillary bridge.
In the last part of the thesis, the primary research on the optical properties of these stripes of ultrahigh purity semiconducting nanotubes was conducted by fluorescence microscopy and photoluminescence excitation (PLE) spectroscopy. The energy transfer of the photogenerated excitons was confirmed between different tube species with controlled band gaps.
In short, the experiments performed in this thesis allowed to gain new insights about the fabrication of large-area SWNT thin films by the cost-effective solution-processed method and most importantly to uncover its intrinsic mechanism as well. Combined with the separation and selection technique like density gradient centrifugation or polyfluorene derivatives assisted method, highly monodisperse semiconducting nanotubes could be deposited into organized, controllable and functional arrays.
Beyond the ambient conditions, precise control for the evaporation under preset temperature and vapor pressure could possibly extend the technique to the industry level. Assisted by some other mature techniques such as roll-to-roll printing, the cost-effective method could be widely used in the manufacture of various thin film devices. More complex 2D or even 3D structures could be designed and accomplished by the method for the functional or stretchable requirements. Further research on the fundamental exciton transition and diffusion in different networks or structures of SWNTs will be the significant precondition for the real applications.
Looking ahead, from the individual carbon nanotube to its thin film, this promising material with outstanding properties had many challenges to overcome before the real-world applications. Thanks to the availability of pure and well-defined materials, the scalable solution-processed approaches for fabrication of thin films should be able to unlock the potential of carbon nanotubes and exploit them in (opto-)electronic devices in the foreseeing future.
In this work, femtosecond laser pulses are used to launch optical excitations on different nanostructures. The excitations are confined below the diffraction limit and propagate along the nanostructures.
Fundamental properties of these ultrashort optical near fields are determined by characterizing the far-field emission after propagation with a setup developed for this task. Furthermore, control of the nanooptical excitations' spatial and temporal evolution is demonstrated for a designed nanostructure.
Pericyclic reactions possess changed reactivities in the excited state compared to the ground state which complement each other, as can be shown by simple frontier molecular orbital analysis. Hence, most molecules that undergo pericyclic reactions feature two different photochemical pathways. In this thesis an investigation of the first nanoseconds after excitation of Diazo Meldrum’s acid (DMA) is presented. The time-resolved absorption change in the mid-infrared spectral region revealed indeed two reaction pathways after excitation of DMA with at least one of them being a pericyclic reaction (a sigmatropic rearrangement). These two pathways most probably start from different electronic states and make the spectroscopy of DMA especially interesting. Femtochemistry also allows the spectroscopy of very short-lived intermediates, which is discussed in context of the sequential mechanism of the Wolff rearrangement of DMA. An interesting application of pericyclic reactions are also molecular photoswitches, i.e. molecules that can be switched by light between two stable states. This work presents a photoswitch on the basis of a 6-pi-electrocyclic reaction, whose reaction dynamics after excitation are unravelled with transient-absorption spectroscopy for both switching directions. The 6-pi-electrocyclic reaction is especially attractive, because of the huge electronic changes and subsequent absorption changes upon switching between the ring-open and ring-closed form. Fulgides, diarlyethenes, maleimides as well as spiropyrans belong to this class of switches. Despite the popularity of spiropyrans, the femtochemistry of the ring-open form (“merocyanine”) is still unknown to a great extent. The experiments in this thesis on this system combined with special modeling algorithms allowed to determine the quantum efficiencies of all reaction pathways of the system, including the ring-closure pathway. With the knowledge of the reaction dynamics, a multipulse control experiment showed that bidirectional full-cycle switching between the two stable states on an ultrafast time scale is possible. Such a controlled ultrafast switching is a process which is inaccessible with conventional light sources and may allow faster switching electronics in the future. Theoretical calculations suggest an enantioselective photochemistry, i.e. to influence the chirality of the emerging molecule with the chirality of the light, a field called “chiral control”. The challenges that need to be overcome to prove a successful chiral control are extremely hard, since enantiosensitive signals, such as circular dichroism, are inherently very small. Hence, chiral control calls for a very sensitive detection as well as an experiment that cancels all effects that may influence the enantiosensitive signal. The first challenge, the sensitive detection, is solved with a polarimeter, which is optimized to be combined with femtosecond spectroscopy. This polarimeter will be an attractive tool for future chiral-control experiments due to its extreme sensitivity. The second challenge, the design of an artefact-free experiment, gives rise to a variety of new questions. The polarization state of the light is the decisive property in such an experiment, because on the one hand the polarization carries the chiral information of the excitation and on the other hand the change of the polarization or the intensity change dependent on the polarization is used as the enantiosensitive probing signal. A new theoretical model presented in this thesis allows to calculate the anisotropic distribution of any given pump-probe experiment in which any pulse can have any polarization state. This allows the design of arbitrary experiments for example polarization shaped pump-probe experiments. Furthermore a setup is presented and simulated that allows the shot-to-shot switching between mirror-images of light polarization states. It can be used either for control experiments in which the sample is excited with mirror-images of the pump polarization or for spectroscopy purposes, such as transient circular dichroism or transient optical rotatory dispersion. The spectroscopic results of this thesis may serve as a basis for these experiments. The parallel and sequential photochemical pathways of DMA and the feasibility of the bidirectional switching of 6,8-dinitro BIPS in a pump–repump experiment on the one hand offer a playground to test the relation of the anisotropy with the polarization of the pump, repump and probe pulse. On the other hand control experiments with varying pump and repump polarization may be able to take influence on the dynamics after excitation. Especially interesting is the combination of the 6,8-dinitro BIPS with the polarization-mirroring setup, because the closed form (spiropyran) is chiral. Perhaps in the future it will be possible to prove a cumulative circular-dichroism effect or even a chiral control with this system.
Ultraviolet irradiation of CO-releasing molecules (CORMs) in water eventually leads to the loss of several carbon monoxide ligands.We show for an exemplary manganese tricarbonyl CORM that only one ligand is photolyzed off on an ultrafast timescale and that some molecules may undergo geminate recombination.
We present a joint experimental and computational study of the nonradiative deactivation of the benzyl radical, C\(_7\)H\(_7\) after UV excitation. Femtosecond time-resolved photoelectron imaging was applied to investigate the photodynamics of the radical. The experiments were accompanied by excited state dynamics simulations using surface hopping. Benzyl has been excited at 265 nm into the D-band (\(\pi\pi^*\)) and the dynamics was probed using probe wavelengths of 398 nm or 798 nm. With 398 nm probe a single time constant of around 70-80 fs was observed. When the dynamics was probed at 798 nm, a second time constant \(\tau_2\)=1.5 ps was visible. It is assigned to further non-radiative deactivation to the lower-lying D\(_1\)/D\(_2\) states.
Photoinduced processes are nowadays studied with a huge variety of spectroscopic methods. In the liquid phase, transient absorption spectroscopy is probably the most versatile pump–probe technique used to study light-induced molecular phenomena. Optical time-resolved spectroscopy is established in a large number of laboratories and is still further being developed with respect to many technical aspects. Nevertheless, the full potential of shortening the data-acquisition time—necessary for the investigation of rapidly photodegrading samples and observation of macroscopically fast processes—achievable with high-repetition-rate laser systems and shot-to-shot detection was not fully exploited. Especially, shot-to-shot detection is highly beneficial due to the high correlation of subsequent laser pulses.
The development and implementation of 100 kHz broadband shot-to-shot data acquisition was presented in Chapter 3. For an established laser dye as a benchmark system, ultrafast excited-state dynamics were measured for the first time with broadband shot-to-shot detection at 100 kHz. An analysis of both the noise characteristics of the employed laser and the correlation of subsequent pulses quantified the advantage of shot-to-shot data acquisition. In the utilized software environment, the time for measuring a complete data set could be sped up by a factor of three or even higher compared to a laser system working at 1 kHz. So far, the limiting factor is the data processing and the movement of the mechanical delay stage. Nevertheless, the new shot-to-shot detection has the potential to shorten the measurement time up to a factor of 100. The data quality is improved by a factor of three when the hitherto conventional averaging scheme is compared to shot-to-shot acquisition for the same number of laser pulses. The expansion of shot-to-shot data acquisition for high repetition rates will allow studies on sensitive samples as exposure times can strongly be reduced to achieve the same signal-to-noise ratio. In addition, multidimensional spectroscopy can also be extended to high-repetition shot-to-shot readout allowing an efficient recording of data. Therefore, in future experiments, dynamics and couplings in sensitive samples and kinetic processes could be studied in more detail.
Complex photophysical and photochemical phenomena are subject of many fields of research. Many of these multifaceted processes are not yet fully understood. Therefore, a possible approach is the elucidation of single reaction steps with the combination of transient absorption spectroscopy and a suitable, less complex model system. The systematic variation of the model system’s properties and environments, e.g., by chemical substitution or adequate choice of the solvent allows the determination of essential entities and reactivities thereof. Proper knowledge of an individual intermediate step and its determining factors can enhance the understanding of the complete photoreaction process.
The application of transient absorption spectroscopy was shown for the optically-induced electron transfer in a series of donor–acceptor oligomers in Chapter 4. In general, the solvent relaxation times were isolated from the back-electron-transfer dynamics by a global lifetime analysis. For the smallest oligomeric structure where complete charge separation is possible, an ultrafast equilibration leads to charge recombination from the configuration showing the lowest barrier for recombination. The back-electron transfer strongly depends on the utilized solvent. Whereas in dichloromethane the back-electron transfer occurs with the maximum rate in the barrierless optimal region, the dynamics in toluene are governed by a Marcus inverted-region effect. The experimentally observed rates were also estimated by theoretical calculations of the respective barriers. The study did not only successfully unravel charge transfer in the oligomeric systems but also improved the understanding of the electron-transfer properties of larger polymers from an earlier study. Therefore, the combination of length variation and time-resolved spectroscopy is an important step towards the correct prediction of charge-carrier dynamics in macroscopic devices, e.g., for photovoltaics.
The bond dissociation of a carbon-monoxide-releasing molecule in aqueous solution was studied in Chapter 5 as a prototype reaction for the photo-triggered breaking of a bond. It was shown that upon excitation only one carbon-monoxide ligand of the tricarbonyl complex is dissociated. A fraction of the photolyzed molecules restore the intact initial complex by geminate recombination within the temporal resolution of the experiment. However, the recombination could be detected by the hot ground-state infrared absorption of the complex. The detectable dicarbonyl formed upon CO release distributes excess energy from the absorbed photon into low-frequency modes which result in broadened absorption bands like for the recombined tricarbonyl. The free coordination site in the ligand sphere is filled with a solvent water molecule. Despite numerous studies of metal carbonyls studied in alkaneous solutions, the elucidation of the dynamics of a CORM in aqueous solution added another important detail to the photochemistry of this class of compounds. Experiments employing a second ultraviolet pump pulse did not trigger further CO dissociation and hence no formation of a monocarbonyl species; this might either be due to a different release mechanism without a further photochemical step or a strong spectral shift of the dicarbonyl’s absorption. Both reasons could explain why degenerate pump–repump–probe spectroscopy is inefficient. However, further experiments with ultraviolet probe pulses could substantiate whether the intermediate dicarbonyl reacts further photochemically or not. Apart from the model-system character of the CORM for bond dissociation, the study could determine exactly how many CO ligands are initially photolyzed off. Detailed knowledge of the release mechanism will affect the previous use and application as well as the further development of CORMs as therapeutic prodrugs to deliver high local concentrations of CO in cancerous or pathological tissue. Hence, the study of two-photon absorption properties which are important for in vivo applications of CORMs should be the main focus in further spectroscopic experiments.
In Chapter 6, both abovementioned molecular phenomena—electron transfer and bond dissociation—were studied in combination. The photochemistry of a tetrazolium salt was studied in detail in a variety of different solvents. Being a relatively small molecule, the studied tetrazolium cation shows a multifaceted photochemistry and is therefore a textbook example for the combination of ultrafast molecular phenomena studied in different environments. Within femtoseconds, the tetrazolium ring is opened. The biradicalic species is then reduced via uptake of an electron from the solvent. The formation of the ring-open formazan photoproduct from this point of the reaction sequence on was excluded by experiments with acidic pH value of the solution. The ring-open radical is stabilized by ring-closure. The resulting tetrazolinyl radical was already observed in experiments with microsecond time resolution. However, its formation was observed in real time for the first time in this study. Irradiation of a tetrazoliumsalt solution yields different photoproduct distributions depending on the solvent. However, it was shown that all photoproducts have a tetrazolinyl radical as a common precursor on an ultrafast time scale. In combination with studies from the literature, the complete photochemical conversion of a tetrazolium salt was clarified in this study. Apart from the prototype character of the reaction sequence, the reaction mechanism will have impact on research associated with life science where tetrazolium assays are used on a daily basis without taking into account of photochemical conversion of the indicating tetrazolium ion and its photochemically formed reactive intermediates. On the basis of the tetrazolium-ion photochemistry, the rich photochemistry of the formazan photoproduct, including structural rearrangements and subsequent reformation of the tetrazolium ion, might be the subject of future studies.
This thesis shows a method advancement and application of transient absorption spectroscopy to exemplary molecular model systems. The insights into each respective field did not only enlighten singular aspects, but have to be seen in a much larger context. Understanding complex photoinduced processes bottom-up by learning about their constituting steps—microscopically and on an ultrafast time scale—is an ideal method to approach understanding and prediction of phenomena in large molecular systems like biological or artificial architectures as for example used in photosynthetic light-harvesting and photovoltaics.
We present a theoretical approach for the simulation of the electric field and exciton propagation in ordered arrays constructed of molecular-sized noble metal clusters bound to organic polymer templates. In order to describe the electronic coupling between individual constituents of the nanostructure we use the ab initio parameterized transition charge method which is more accurate than the usual dipole-dipole coupling. The electronic population dynamics in the nanostructure under an external laser pulse excitation is simulated by numerical integration of the time-dependent Schrodinger equation employing the fully coupled Hamiltonian. The solution of the TDSE gives rise to time-dependent partial point charges for each subunit of the nanostructure, and the spatio-temporal electric field distribution is evaluated by means of classical electrodynamics methods. The time-dependent partial charges are determined based on the stationary partial and transition charges obtained in the framework of the TDDFT. In order to treat large plasmonic nanostructures constructed of many constituents, the approximate self-consistent iterative approach presented in (Lisinetskaya and Mitric in Phys Rev B 89:035433, 2014) is modified to include the transition-charge-based interaction. The developed methods are used to study the optical response and exciton dynamics of Ag-3(+) and porphyrin-Ag-4 dimers. Subsequently, the spatio-temporal electric field distribution in a ring constructed of ten porphyrin-Ag-4 subunits under the action of circularly polarized laser pulse is simulated. The presented methodology provides a theoretical basis for the investigation of coupled light-exciton propagation in nanoarchitectures built from molecular size metal nanoclusters in which quantum confinement effects are important.
We demonstrate two-quantum (2Q) coherent two-dimensional (2D)electronic spectroscopy using a shot-to-shot-modulated pulse shaper and fluorescence detection. Broadband collinear excitation is realized with the supercontinuum output of an argon-filled hollow-core fiber, enabling us to excite multiple transitions simultaneously in the visible range. The 2Q contribution is extracted via a three-pulse sequence with 16-fold phase cycling and simulated employing cresyl violet as a model system. Furthermore, we report the first experimental realization of one-quantum−two-quantum (1Q-2Q) 2D spectroscopy, offering less congested spectra as compared with the 2Q implementation. We avoid scattering artifacts and nonresonant solvent contributions by using fluorescence as the observable. This allows us to extract quantitative information about doubly excited states that agree with literature expectations. The high sensitivity and background-free nature of fluorescence detection allow for a general applicability of this method to many other systems.
We introduce a new approach to transient spectroscopy, fluorescence‐detected pump–probe (F‐PP) spectroscopy, that overcomes several limitations of traditional PP. F‐PP suppresses excited‐state absorption, provides background‐free detection, removes artifacts resulting from pump–pulse scattering, from non‐resonant solvent response, or from coherent pulse overlap, and allows unique extraction of excited‐state dynamics under certain conditions. Despite incoherent detection, time resolution of F‐PP is given by the duration of the laser pulses, independent of the fluorescence lifetime. We describe the working principle of F‐PP and provide its theoretical description. Then we illustrate specific features of F‐PP by direct comparison with PP, theoretically and experimentally. For this purpose, we investigate, with both techniques, a molecular squaraine heterodimer, core–shell CdSe/ZnS quantum dots, and fluorescent protein mCherry. F‐PP is broadly applicable to chemical systems in various environments and in different spectral regimes.
In the experiments presented in this work, third-order, time-resolved spectroscopy was applied to the disentanglement of nuclear and electronic degrees of freedom in polyatomic molecules. The motivation for approaching this problem was given by the decisive role that the coupling of nuclear and electronic dynamics plays in the mechanism of photochemical reactions and photobiological processes. In order to approach this complex problem, different strategies within the framework of time-resolved, four-wave mixing spectroscopy were developed that allowed for the dynamic as well as the energetic aspects of vibronic coupling in non-radiative transitions of polyatomic molecules to be addressed. This was achieved by utilizing the influence of optical as well as Raman resonances on four-wave mixing processes. These resonance effects on third-order, optical processes allow for a high selectivity to be attained with respect to the interrogation of specific aspects of molecular dynamics. The development of different strategies within the framework of time-resolved, four-wave mixing spectroscopy for addressing the problem of vibronic coupling began with the experiments on gaseous iodine. This simple, well investigated molecular system was chosen in order to unambiguously characterize the effect of Raman resonances on four-wave mixing processes. A time-resolved degenerative four-wave mixing (DFWM) experiment was carried out on gaseous iodine that allowed for the dynamics of coherent Stokes Raman scattering (CSRS) as well as a coherent anti-Stokes Raman scattering (CARS) to be observed parallel to the dynamics of a DFWM process at different spectral positions of the FWM signal. Here, the state-selectivity of these different FWM processes manifests itself in the vibrational wave packet dynamics on different electronic potentials of iodine. It could be shown that Raman resonances determine the selectivity with which these FWM processes prepare and interrogate nuclear dynamics in different electronic states. With the insight gained into the relevance of Raman resonant processes in FWM spectroscopy, an experimental scheme was devised that utilizes this effect to selectively interrogate the dynamics of a specific vibrational mode within a polyatomic molecule during a radiationless electronic transition. Here, a CARS process was employed to selectively probe specific vibrational modes of a molecular system by variably tuning the energy difference between the lasers involved in the CARS process to be in Raman resonance with the vibrational energy spacing of a particular vibrational mode. Using this aspect of a tunable resonance enhancement within a CARS scheme, this optical process was incorporated in a time-resolved pump-probe experiment as a mode-selective probe mechanism. This type of experimental configuration, that employs four pulsed laser fields, was classified as a pump-CARS scheme. Here, a laser pulse independent of the CARS process initiates the molecular dynamics that are interrogated selectively with respect to the vibrational mode of the system through the simultaneous interaction of the three pulsed fields involved in the CARS process. Time-resolution on a femtosecond timescale is achieved by introducing a time delay between the independent pump laser and the laser pulses of the CARS process. The experimental configuration of a pump-CARS scheme was applied to the study of the nuclear dynamics involved in the radiationless electronic transition between the first excited singlet state (S1) and the electronic ground state (S0) of all-trans-b-carotene. The mode-selective CARS probe allowed for the characteristic timescale with which specific vibrational modes are repopulated in the S0 state to be determined. From the varying repopulation times of specific vibrational modes, a mechanism with which the full set of vibrational states of the S0 potential are repopulated subsequent to the internal conversion process could be postulated. Most importantly, the form of nuclear motion that primarily funnels the population between the two electronic states could be identified as the C=C symmetric symmetric stretch mode in the polyene backbone of b-carotene. With this, the reaction coordinate of this radiationless electronic transition could be identified. The experiment shows, that the CARS probe is capable of determining the nuclear motion coupled to a radiationless electronic transition in complex polyatomic systems. The S1/S0 internal conversion process in b-carotene was further investigated with time-resolved transient gratings. Here, the energetic aspects of a non-adiabatic transition was addressed by determining the influence of the vibrational energy on the rate of this internal conversion. In order to compare the rate of internal conversion taking place out of vibrational ground state modes versus this transition initiating out of vibrationally hot modes, the strategy of shifting the probe mechanism in the transient grating scheme to spectral positions within and out of the red flank of the S1 absorption profile was pursued. The interrogation of different vibrational states was verified by determining the degree of vibrational cooling, taking place parallel to the internal conversion process. With this strategy, it could be shown that vibrationally hot states contribute to the internal conversion with a higher rate than vibrational ground state modes. In summary, different third-order, optical processes in the framework of time-resolved FWM were applied to the study of non-adiabatic dynamics in polyatomic molecules. By utilizing the effect of optical as well as Raman resonances on different FWM processes, it could be shown that third-order, time-resolved spectroscopy is a powerful tool for gaining insight into complex molecular dynamics such as vibronic coupling. The experiments presented in this work showed that the CARS process, as a mode-selective probe in time-resolved experiments, is capable of disentangling nuclear and electronic dynamics.
The controlled shaping of ultrashort laser pulses is a powerful technology and applied in many laser laboratories today. Most of the used pulse shapers are only able to produce linearly polarized pulses shaped in amplitude and phase. Some devices are also capable of producing limited time-varying polarization profiles, but they are not able to control the amplitude. However, for some state-of-the-art non-linear time-resolved methods, such as polarization-enhanced two-dimensional spectroscopy, the possibility of controlling the amplitude and the polarization simultaneously is desirable.
Over the last years, different concepts have been developed to overcome these restrictions and to manipulate the complete vector-field of an ultrashort laser pulse with independent control over all four degrees of freedom - phase, amplitude, orientation, and ellipticity. The aim of this work was to build such a vector-field shaper. While the basic concept used for our setup is based on previous designs reported in the literature, the goal was to develop an optimized optical design that minimizes artifacts, allowing for the generation of predefined polarization pulse sequences with the highest achievable accuracy.
In Chapter 3, different approaches reported in the literature for extended and unrestricted vector-field control were examined and compared in detail. Based on this analysis, we decided to follow the approach of modulating the spectral phase and amplitude of two perpendicularly polarized pulses independently from each other in two arms of an interferometer and recombining them to a single laser pulse to gain control over the complete vector field.
As described in Chapter 4, the setup consists of three functional groups: i) an optical component to generate and recombine the two polarized beams, ii) a 4f setup, and iii) a refracting telescope to direct the two beams under two different angles of incidence onto the grating of the 4f setup in a common-path geometry. This geometry was chosen to overcome potential phase instabilities of an interferometric vector-field shaper. Manipulating the two perpendicularly polarized pulses simultaneously within one 4f setup and using adjacent pixel groups of the same liquid-crystal spatial light modulator (LC SLM) for the two polarizations has the advantages that only a single dual-layer LC SLM is required and that a robust and compact setup was achieved. The shaping capabilities of the presented design were optimized by finding the best parameters for the setup through numerical calculations to adjust the frequency distributions for a broad spectrum of 740 – 880 nm. Instead of using a Wollaston prism as in previous designs, a thin-film polarizer (TFP) is utilized to generate and recombine the two orthogonally polarized beams. Artifacts such as angular dispersion and phase distortions along the beam profile which arise when a Wollaston prism is used were discussed. Furthermore, it was shown by ray-tracing simulations that in combination with a telescope and the 4f setup, a significant deformation of the beam profile would be present when using a Wollaston prism since a separation of the incoming and outgoing beam in height is needed. The ray-tracing simulations also showed that most optical aberrations of the setup are canceled out when the incoming and outgoing beams propagate in the exact same plane by inverting the beam paths. This was realized by employing a TFP in the so-called crossed-polarizer arrangement which has also the advantage that the polarization-dependent efficiencies of the TFP and the other optics are automatically compensated and that a high extinction ratio in the order of 15000:1 is reached. Chromatic aberrations are, however, not compensated by the crossed-polarizer arrangement. The ray-tracing simulations confirmed that these chromatic aberrations are mainly caused by the telescope and not by the cylindrical lens of the 4f setup. Nevertheless, in the experimentally used wavelength range of 780 – 816 nm, only minor distortions of the beam profile were observed, which were thus considered to be negligible in the presented setup.
The software implementation of the pulse shaper was reviewed in Chapter 5 of this thesis. In order to perform various experiments, five different parameterizations, accounting for the extended shaping capabilities of a vector-field shaper, were developed. The Pixel Basis, the Spectral Basis, and the Spectral Taylor Basis can generally be used in combination with an optimization algorithm and are therefore well suited for quantum control experiments. For multidimensional spectroscopy, the Polarized Four-Pulse Basis was established. With this parameterization pulse sequences with up to four subpulses can be created. The polarization state of each subpulse can be specified and the relative intensity, phase, and temporal delay between consecutive subpulses can be controlled. In addition, different software programs were introduced in Chapter 5 which are required to perform the experiments conducted in this work.
The experimental results were presented in Chapter 6. The frequency distribution across the LC SLM was measured proving that the optimal frequency distribution was realized experimentally. Furthermore, the excellent performance of the TFP was verified. In general, satellite pulses are emitted from the TFP due to multiple internal reflections. Various measurements demonstrated that these pulses are temporally separated by at least 4.05 ps from the main pulse and that they have vanishing intensity. The phase stability between the two arms of the presented common-path setup σ = 28.3 mrad (λ/222) over 60 minutes. To further improve this stability over very long measurement times, an on-the-fly phase reduction and stabilization (OPRAS) routine utilizing the pulse shaper itself was developed. This routine automatically produces a compressed pulse with a minimized relative phase between the two polarization components. A phase stability of σ = 31.9 mrad (λ/197) over nearly 24 hours was measured by employing OPRAS. Various pulse sequences exceeding the capabilities of conventional pulse shapers were generated and characterized. The experimental results proved that shaped pulses with arbitrary phase, amplitude, and polarization states can be created. In all cases very high agreement between the target parameters and the experimental data was achieved.
For the future use of the setup also possible modifications were suggested. These are not strictly required, but all of them could further improve the performance and flexibility of the setup. Firstly, it was illustrated how a “dual-output” of the setup can be realized. With this modification it would be possible to use the main intensity of the shaped pulse for an experiment while using a small fraction to characterize the pulse or to perform OPRAS simultaneously. Secondly, the basic idea of replacing the telescope by focusing mirrors in order to eliminate the chromatic aberrations was presented. Regarding the different parameterizations for vector-field shaping, some modifications increasing the flexibility of the implemented bases and the realization of a von Neumann Basis for the presented setup were proposed. In future experiments, the vector-field shaper will be used in conjunction with a photoemission electron microscope (PEEM). This approach combines the temporal resolution provided by ultrashort laser pulses with the high spatial resolution gained by electron microscopy in order to perform two-dimensional spectroscopy and coherent control on nanostructures with polarization-shaped femtosecond laser pulses. In combination with other chiral-sensitive experimental setups implemented earlier in our group, the vector-field shaper opens up new perspectives for chiral femtochemistry and chiral control.
The designed vector-field shaper meets all requirements to generate high-precision polarization-shaped multipulse sequences. These can be used to perform numerous polarization-sensitive experiments. Employing the OPRAS routine, a quasi-infinitely long phase stability is achieved and complex and elaborated long-term measurements can be carried out. The fact that OPRAS demands no additional hardware and that only a single dual-layer LC SLM and inexpensive optics are required allows the building of a vector-field shaper at comparatively low costs. We hope that with the detailed insights into the optical design process as well as into the software implementation given in this thesis, vector-field shaping will become a standard technique just as conventional pulse shaping in the upcoming years.
Ziel der vorliegenden Arbeit war die Funktionalisierung von Titanoberflächen mit dem Glycosaminoglycan Heparin, um bei Kontakt des Werkstoffs mit Blut die Gerinnungskaskade nicht auszulösen und das Material für Stents (Gefäßstützen) im arteriellen System einsetzbar zu machen. Für die Modifizierungen wurden als Modell der oxidierten Titanoberfläche sowohl oxidierte cp-Titanplättchen als auch TiO2-Pulver verwendet. Heparin kam zum Einsatz, da es sowohl die Hämostase (Blutgerinnung) als auch die Proliferation (Überwucherung) mit glatten Muskelzellen unterdrückt und somit eine Restenose (Wiederverengung) des in die verengte Arterie eingebrachten Stents verhindert. Die kovalente Immobilisierung des Wirkstoffs erfolgte über bifunktionale Spacer (Haftvermittlermoleküle). Spacer waren 3-(Trimethoxysilyl)-propylamin (APMS), N-(2-Aminoethyl)-3-aminopropyltrimethoxysilan (Diamino-APMS) und N1-[3-(Trimethoxysilyl)-propyl]diethylen¬triamin (Triamino-APMS). Der qualitative und quantitative Nachweis der Funktionalisierung von TiO2 mit Haftvermittler bzw. Heparin erfolgte durch schwingungsspektroskopische Methoden, komplexometrische Farbreaktionen sowie der Bestimmung des Zetapotentials im Elektrolytkontakt. Durch die Anbindung von APMS, Di- und Triamino-APMS stieg das Zetapotential von ca. -26 mV auf positive Werte zwischen +41 und +45 mV. Ein Absinken des Zetapotentials belegte die erfolgreiche Anbindung von Heparin (Werte zwischen -39 und -37 mV) an die verschiedenen Haftvermittler, ebenso wie das Vorhandensein der symmetrischen SO3-Valenzschwingung bei 1040 cm-1. Der quantitative Nachweis der immobilisierten Aminogruppen über die Ninhydrinreaktion ergab für die TiO2-Pulver Werte zwischen 17-20 NH2/nm2, wobei die dichteste Funktionalisierung mit APMS und die niedrigste mit Triamino-APMS erzielt werden konnte. Alle Werte lagen im Bereich von Multilayern, da ein Monolayer aus ca. 2 3 NH2/nm2 besteht. Die immobilisierte Menge an Heparin war bei Verwendung von APMS am größten (53.3±3.6 ng/cm2) und bei Triamino-APMS am geringsten (32.1±5.7 ng/cm2). Die biologische Wirksamkeit des gebundenen Heparins wurde über das chromogene Substrat ChromozymTH® bestimmt und verblieb bei Anbindung an den Spacer mit der größten Moleküllänge (Triamino-APMS) mit ca. 70% am wirksamsten. Neben der kovalenten Anbindung des Wirkstoffs an Spacer zielte diese Arbeit auf die Entwicklung von organisch modifizierten, porösen SiO2-Wirkstoffdepots (P-MA-PS; Poly-methacryl¬oxy¬propylpolysilsesquioxane) für Heparin ab, die sowohl als Volumenwerkstoffe als auch zur Modifikation von Titan(dioxid)oberflächen anwendbar wären. Die Matrices wurden ausgehend von MAS (Methacryl¬oxypropyl¬trimethoxysilan) über den Sol-Gel Prozeß anorganisch und anschließend über photochemische Polymerisation zusätzlich organisch vernetzt. Die Quantifizierung des Polymerisationsgrads erfolgte über die Signalintensität der methacrylischen C=C-Doppelbindung bei 1635 cm-1 durch Integration einer Gauß-Funktion. Über den Polymerisationsgrad der organischen Matrix zwischen 0-71% konnte die Freisetzungskinetik von Heparin je nach therapeutischer Anforderung eingestellt werden. Es konnte gezeigt werden, daß hohe Wirkstoff-Beladungen und niedrige Polymerisationsgrade mit einer schnelleren Freisetzung des Heparins korrelierten, die aufgrund der Endlichkeit des Wirkstoffs im Depot einer Kinetik 1. Ordnung unterlag. Die kumulativ freigesetzten Wirkstoffmengen verhielten sich hierbei proportional zur Wurzel aus der Freisetzungszeit, was dem Higuchi-Modell zur Wirkstofffreisetzung aus porösen Matrices mit einem rein Diffusions-kontrollierten Mechanismus entsprach. Die durch Hydrolyse bedingte Degradation der anorganischen Matrix, die UV-VIS-spektroskopisch bei λ = 220 nm gemessen wurde, folgte einer Kinetik pseudo-0. Ordnung. Da das freigesetzte Heparin seine biologische Wirksamkeit beibehielt, sind P-MA-PS Matrices interessant für klinische Anwendungen, wie z.B. für die Beschichtung von Gefäßstützen, die im Blutkontakt stehen.
Theory predicts peculiar features for excited-state dynamics in one dimension (1D) that are difficult to be observed experimentally. Single-walled carbon nanotubes (SWNTs) are an excellent approximation to 1D quantum confinement, due to their very high aspect ratio and low density of defects. Here we use ultrafast optical spectroscopy to probe photogenerated charge-carriers in (6,5) semiconducting SWNTs. We identify the transient energy shift of the highly polarizable S\(_{33}\) transition as a sensitive fingerprint of charge-carriers in SWNTs. By measuring the coherent phonon amplitude profile we obtain a precise estimate of the Stark-shift and discuss the binding energy of the S\(_{33}\) excitonic transition. From this, we infer that charge-carriers are formed instantaneously (<50 fs) even upon pumping the first exciton, S\(_{11}\). The decay of the photogenerated charge-carrier population is well described by a model for geminate recombination in 1D.
Excitons in atomically thin transition-metal dichalcogenides (TMDs) have been established as an attractive platform to explore polaritonic physics, owing to their enormous binding energies and giant oscillator strength. Basic spectral features of exciton polaritons in TMD microcavities, thus far, were conventionally explained via two-coupled-oscillator models. This ignores, however, the impact of phonons on the polariton energy structure. Here we establish and quantify the threefold coupling between excitons, cavity photons, and phonons. For this purpose, we employ energy-momentum-resolved photoluminescence and spatially resolved coherent two-dimensional spectroscopy to investigate the spectral properties of a high-quality-factor microcavity with an embedded WSe\(_2\) van-der-Waals heterostructure at room temperature. Our approach reveals a rich multi-branch structure which thus far has not been captured in previous experiments. Simulation of the data reveals hybridized exciton-photon-phonon states, providing new physical insight into the exciton polariton system based on layered TMDs.
The invention of laser pulse shapers allowed for various quantum control experiments, where a chemical reaction is guided by specifically tailored laser pulses. However, despite of the prominent role of the liquid phase in chemistry, no successful attempt for controlling the selectivity of a bond-fission reaction has yet been reported in this state of matter. Promising candidates for such an experiment are C$_{\infty\mathrm{v}}$-symmetric trihalide anions with two different chemical bonds like $\ce{I2Cl-}$, because these molecules notionally offer the most simplest selectivity-control scenario of breaking either the one or the other bond and they are expected to dissociate under ultraviolet (UV) irradiation like it is known for the most-studied trihalide $\ce{I3-}$.
In order to investigate in this thesis the possibility that the dissociation reaction of such trihalides branches into two different photofragments, the ultrafast photodissociation dynamics of $\ce{I3-}$, $\ce{Br3-}$, $\ce{IBr2-}$ and $\ce{ICl2-}$ (point group D$_{\infty\mathrm{h}}$) as well as of $\ce{I2Br-}$ and $\ce{I2Cl-}$ (point group C$_{\infty\mathrm{v}}$) in dichloromethane solution were measured with broadband transient absorption spectroscopy in magic-angle configuration. The identification of the reaction pathway(s) relies on vibrational wavepacket oscillations, which survive the dissociation process and therefore carry not only informations about the reactant trihalides but also about the fragment dihalides.
These characteristic vibrational wavenumbers were extracted from the measured transient absorption spectra by globally fitting the population dynamics together with the wavepacket dynamics. Until recently, such a combined model function was not available in the well-established fitting tool Glotaran. This made it inevitable to develop a custom implementation of the underlying variable-projection fitting algorithm, for which the computer-algebra software Mathematica was chosen. Mathematica's sophisticated built-in functions allow not only for a high flexibility in constructing arbitrary model functions, but also offer the possibility to automatically calculate the derivative(s) of a model function. This allows the fitting procedure to use the exact Jacobian matrix instead of approximating it with the finite difference method.
Against the expectation, only one of the two thinkable photodissociation channels was found for each of the investigated C$_{\infty\mathrm{v}}$ trihalides. Since the photofragments recombine, their absorption signal as well as the reactant ground state bleach recover. This happens in a biexponential manner, which in the case of $\ce{I3-}$ was interpreted by Ruhman and coworkers with the direct formation of a neutral dihalogen fragment $\ce{I2}$ beside the negatively charged dihalide fragment $\ce{I2-}$. In this thesis, such a direct reaction channel was not found and instead the fast component of the biexponential decay is explained with vibrational excess energy mediating the recombination-preceding electron transfer process $\ce{I2- + I -> I2 + I-}$, while the slow component is attributed to cooled-down fragments.
In addition to the trihalide experiments, the possibility of a magic-angle configuration for polarization-shaping control experiments was theoretically investigated in this thesis by deriving magic-angle conditions for the third-order electric-dipole response signal of arbitrarily polarized laser pulses. Furthermore, the subtleties of anisotropy signals violating the well-known range of \numrange{-0.2}{0.4} were studied.
Herein we report a broad series of new trinuclear supramolecular Ru(bda) macrocycles bearing different substituents at the axial or equatorial ligands which enabled investigation of substituent effects on the catalytic activities in chemical and photocatalytic water oxidation. Our detailed investigations revealed that the activities of these functionalized macrocycles in water oxidation are significantly affected by the position at which the substituents were introduced. Interestingly, this effect could not be explained based on the redox properties of the catalysts since these are not markedly influenced by the functionalization of the ligands. Instead, detailed investigations by X-ray crystal structure analysis and theoretical simulations showed that conformational changes imparted by the substituents are responsible for the variation of catalytic activities of the Ru macrocycles. For the first time, macrocyclic structure of this class of water oxidation catalysts is unequivocally confirmed and experimental indication for a hydrogen-bonded water network present in the cavity of the macrocycles is provided by crystal structure analysis. We ascribe the high catalytic efficiency of our Ru(bda) macrocycles to cooperative proton abstractions facilitated by such a network of preorganized water molecules in their cavity, which is reminiscent of catalytic activities of enzymes at active sites.
Within this work, an additive and a subtractive QM/MM interface were implemented into CAST. The interactions between QM and MM system are described via electrostatic embedding. Link atoms are used to saturate dangling bonds originating from the separation of QM and MM system. Available energy evaluation methods to be combined include force fields (OPLSAA and AMBER), semi-empirical programs (Mopac and DFTB+), and quantum-chemical methods (from Gaussian, Orca, and Psi4). Both the additive and the subtractive interface can deal with periodic boundary conditions. The subtractive scheme was extended to enable QM/QM, three-layer, and multi-center calculations. Another feature only available within the subtractive interface is the microiteration procedure for local optimizations.
The novel QM/MM methods were applied to the investigation of the reaction path for the complex formation between rhodesain and K11777. Benchmark calculations show a very good agreement with results from Gaussian-ONIOM. When comparing the relative energies obtained with different options to a computation where the whole system was treated with the “QM method” DFTB3, the electrostatic embedding scheme with option “delM3” gives the best results. “delM3” means that atoms with up to three bonds distance to the QM region are ignored when creating the external charges. This is done in order to avoid a double counting of Coulomb interactions between QM and MM system. The embedding scheme for the inner system in a three-layer calculation, however, does not have a significant influence on the energies. The same is true for the choice of the coupling scheme: Whether the additive or the subtractive QM/MM interface is applied does not alter the results significantly. The choice of the QM region, though, proved to be an important factor. As can be seen from the comparison of two QM systems of different size, bigger is not always better here. Instead, one has to make sure not to separate important (polar) interactions by the QM/MM border.
After this benchmark study with singlepoint calculations, the various possibilities of CAST were used to approximate the solution of a remaining problem: The predicted reaction energy for the formation of the rhodesain-K11777 complex differs significantly depending on the starting point of the reaction path.
The reason for this is assumed to be an inadequate adjustment of the environment during the scans, which leads to a better stabilization of the starting structure in comparison to the final structure. The first approach to improve this adjustment was performing the relaxed scan with a bigger QM region instead of the minimal QM system used before. While the paths starting from the covalent complex do not change significantly, those starting from the non-covalent complex become more exothermic, leading to a higher similarity of the two paths. Nevertheless, the difference of the reaction energy is still around 15 kcal/mol, which is far from a perfect agreement. For this reason, Umbrella Samplings were run. Here, the adjustment of the environment is not done by local optimizations like in the scans, but by MD simulations. This has the advantage that the system can cross barriers and reach different local minima. The relative free energies obtained by Umbrella Samplings with suitable QM regions are nearly identical, independently of the starting point of the calculation. Thus, \(\Delta A\) evaluated by these computations can be assumed to reproduce the real energy change best. An MD simulation that was started from the transition state in order to mimic a “real-time” reaction indicates a very fast adjustment of the environment during the formation of the complex. This confirms that Umbrella Sampling is probably better suitable to describe the reaction path than a scan, where the environment can never move strong enough to leave the current local minimum.
Two thematic complexes were addressed within this work. One part is related to improvements and new implementations into the CAST program package. Thereby the main focus laid on the delivery of a tool which can be used to characterize complex reactions and their mechanisms. But also within the new force field (FF) method (SAPT-FF) within the CAST program, several improvements were made. The second topic is related to the description of dye molecules and their spectral properties. The main focus within these studies was set on the influence of the environment on these properties. In the first topic improvements of the local acting NEB (nudged elastic band) methods were included and the number of available methods was extended. The initial pathway generation was improved by implementing the IDPP (image dependent pair potential) method and a new method was implemented for describing temperature dependent pathways. Additionally, improvements have been made to the optimization routines (global NEB). As a second part the Pathopt (PO) method was considerably improved. In the beginning of the work the original PO idea was used. In this approach one starts with a global optimization on one n-1 dimensional hyperplane which divides the reaction into two sub-areas for obtaining guesses of TSs (transition states). These found TS guesses were used to optimize to the ”true” TS. Starting from the optimized ones a relaxation to the next connected minima is done. This idea has been automatically implemented and extended to several number of hyperplanes. In this manner a group of pathsegments is obtained which needs to be connected, but within this work it was realized that such a procedure might be not very efficient. Therefore, a new strategy was implemented which is founded on the same constrained global optimization scheme (MCM) for which the user defines the number of hyperplanes generated. The number of such generated hyperplanes should be large enough
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to describe the space between the concerning reactants in a sufficient way. The found minima are directly used to built up the reaction pathway. For this purpose a RMSD (root mean square deviation) criterion is used to walk along ways of minimal change from one to another hyperplane. To prove the implementations various test calculations were carried out and extensions included to prove the capabilities of the new strategy. Related to these tests a new strategy for applying the move steps in MCM (Monte Carlo with minimization) was realized which is also related to the question of the coordinates representation. We were able to show that the hopping steps in MCM can be improved by applying Cartesian steps in combination of random dihedral moves with respect to the constraint. In this way it was possible to show that a large variety of systems can be treated. An additional chapter shows the improvements of the SAPT-FF implementation and related test cases. It was possible to treat benzene dimer and cluster systems of different sizes consistently also in accordance with high level ab initio based approaches. Furthermore, we showed that the SAPT-FF with the right parameters outperforms the standard AMOEBA implementation which is the basis of the SAPT-FF implementation. In the last three chapters deal with the description of perlyene-based dyes. In the first smaller chapter ground state chemistry description of macro cycles of PBI (perylene bisimide) derivatives were investigated. Therefore, AFM (atomic force microscopy) based pictures were explained within our study. The methods to explain aggregation behavior in dependency of the ring size were MD simulations and configuration studies. The last two chapters deal with opto-electronic or photo-physical properties of PBI and PTCDA (perylene-3,4,9,10-tetracarboxylic dianhydride). In detail, we investigated the role of the environment and the aggregate or crystal surrounding by applying different models. In that way implicit and explicit solvation models, the size of aggregates and vibration motions were used. In the case of PBI the recent work is found on preliminary studies related to my bachelor thesis and extends it. It was shown that the direct influence of a polarizable surrounding, as well as explicit inclusion of solvent molecules on the overall description of the excitations and nature of the excited states is weaker as one might expect. However the inclusion of intra-molecular degrees of freedom showed a stronger influence on the state characteristics and can induce a change of the order of states within the dimer picture. For the PTCDA molecule the main focus was set on the description of the absorption spectrum of crystalline thin films. Related to this older works exist which already gave a description and assignment of the absorption band, but are based on different approaches compared to the one used in this work. We used the supermolecule ansatz, whereas the environment and different aggregate sizes were investigated. Within the dimer based approach we were able to show that using continuum solvation (IEFPCM/COSMO) based description for the environment the relative order of states remains unchanged. Similar to the PBI calculations the influence of the vibrational motions /distortions is larger. The simulation of the crystal environment by using QM/MM (quantum mechanics/molecular mechanics) approaches delivered that an asymmetric charge distribution might induce a localization of the excitation and a stronger mixing of states. For obtaining further insights we go beyond the dimer picture and aggregates of different sizes were used, whereas the simulations up to the octadecamer mono- and even dual-layer stack were carried out. Within these calculations it was shown that the H-coupling is dominating over a weaker J-coupling between different stacks. Additionally the calculations based on DFT (density functional theory) and semi-empirics showed that the lowest state in terms of energy are mostly of Frenkel type, whereas the higher lying states are CT ones which mix with embedded Frenkel type states. The first band of the absorption spectrum was explained by inclusion of vibrational motions within the stacks which induce an intensity gain of the first excited state. This intensity was not explainable by using the undistorted stacks. Also relaxations at the crystal surface might play a role, but are experimentally not explainable.
In this thesis, we apply the information-theoretic approach in the context of quantum dynamics and wave packet motion: Information-theoretic measures are calculated from position and momentum densities, which are obtained from time-dependent quantum wave functions. The aim of this thesis is to benchmark, analyze and interpret these quantities and relate their features to the wave packet dynamics. Firstly, this is done for the harmonic oscillator (HO) with and without static disorder. In the unperturbed HO, the analytical study of coherent and squeezed states reveals time-dependent entropy expressions related to the localization of the wave function. In the disordered HO, entropies from classical and quantum dynamics are compared for short and long times. In the quantum case, imprints of wave packet revivals are found in the entropy. Then, the energy dependence of the entropy for very long times is discussed. Secondly, this is donefor correlated electron-nuclear motion. Here, entropies derived from the total, electronic and nuclear density, respectively, are calculated in position and momentum space for weak and strong adiabatic electronic coupling. The correlation between electron and nucleus is investigated using different correlation measures, where some of these functions are sensitive to the nodal structure of the wave function. An analytic ansatz to interpret the information-theoretical quantities is applied as well.
Infrared photodissociation spectroscopy of ionic hydrocarbons : microsolvation and protonation sites
(2007)
This work has presented a spectroscopic analysis of three types of hydrocarbon cations: two ionized aromatic hydrocarbons, two protonated aromatic hydrocarbons and the cation of a fundamental radical hydrocarbon. The experiments were centered on the proton stretch vibrations of mass-selected complexes of these systems and polar (H2O) and non polar (Ar, N2, CO2) ligands. The experiments have been done in a tandem mass spectrometer coupled with an electron impact ionization ion source; an OPO laser system was used as tunable IR light source. All the proposed dimer structures have been also modeled using quantum chemical calculations (QCC). These calculations have consistently been matched with the experimental results and have enabled clear identification of the spectral features observed. This has enabled the evaluation of thermochemical properties which could not be extracted directly from experiment. The experiments done on complexes of 1-Np+ and Im+ have allowed for the acidity of their various groups to be probed: the shifts in the frequency as well as the enhancement in the intensity of the OH and NH stretch vibrations resulting from the complexation have yielded dependences on both the species (L) and the number (n) of the ligands. OH bound 1-Np+···Ar has been detected for the first time, showing that the REMPI-IRPD method is severely limited with respect to the production of the most stable isomer of a given cationic complex. The detection of c-1-Np+···(N2)n corresponds to the first observation of c-1-Np+ complexes and enables thus direct comparison of both 1-Np+ rotamers. The shift of the NH vibration of Im+···N2(H) yielded the first experimental estimate for the PA of the imidazyl radical. It was also found that the most stable 1-Np+···Ar and Im+···Ar structures differ qualitatively from that of the corresponding neutral dimers (H-bound vs pi-bound), emphasizing the large impact of ionization on the interaction potential and the preferred recognition motif between acidic aromatic molecules (A) and nonpolar ligands. The IRPD spectra of 1-Np+···Ln and Im+···Ln yielded spectroscopic information about the CH, NH and OH stretch vibrations of bare 1-Np+ and Im+. The dependence of the shifts in the frequency of the OH and NH stretch vibrations allows for creating microsolvation models. The spectroscopic results obtained on size-selected 1-NpH+···Ln show that, in the output of the presently used ion source, three classes of 1-NpH+ isomers can be identified: oxonium ions (1-Np protonated at the O atom); carbenium ions obtained by protonation in the para and ortho positions with respect to the OH functional group; carbenium ions obtained by the addition of a proton to well-defined sites on the second naphthalene ring. The spectral identification of these three classes of protonation sites is supported by their different photofragmentation patterns. It was demonstrated that the spectroscopic monitoring of the microsolvation of ImH+ in Ar and N2 together with the QCCs paint a very detailed picture of the microsolvation process, evidencing clear differences between the microsolvation models as function of the PA of the ligands. Important differences have also been identified between the various binding sites, enabling the creation of a clear scale of priorities for occupation of the binding sites during microsolvation. The application of IRPD to the study of microhydrated ImH+ provided for the first time direct spectroscopic information on the properties of the N-H bonds of this biomolecular building block under controlled microhydration. It was demonstrated that, as protonation enhances the acidity of the NH groups, the ability for proton conductivity of ImH+ increases. A very important result is derived from the IRPD spectroscopy of C2H5+···L (L = Ar, N2, CO2, CH4) dimers. The equilibrium geometry of the C2H5+ has long been debated. Now, IRPD spectra were recorded over the range of the CH stretch fundamentals (covering possible sp3 and sp2 hybridization of C). Depending on the ligand species, the spectra are found to be dominated by the fingerprint of two largely different dimer geometries. Using the experimental C2H5+···Ar spectrum and the corresponding QCCs, the structure of the (weakly perturbed) C2H5+ was found to be the nonclassical one, with one proton straddling across the C=C bond of the H2C=CH2. On the other hand, ligands like N2 and CH4 are strongly influencing the geometry, as seen in the spectral signatures of the C2H5+···N2 and C2H5+···CH4, which correspond to the classical [H2CCH3]+. It was thus demonstrated that while the nonclassical C2H5+ is the global minimum on the PES of the free [C2,H5]+, the structure of the C2H5+ can be strongly influenced by the chemical properties of the environment.
Investigation of Nanostructure-Induced Localized Light Phenomena Using Ultrafast Laser Spectroscopy
(2017)
In recent years, the interaction of light with subwavelength structures, i.e., structures that are smaller than the optical wavelength, became more and more interesting to scientific research, since it provides the opportunity to manipulate light-induced dynamics below the optical diffraction limit. Specifically designed nanomaterials can be utilized to tailor the temporal evolution of electromagnetic fields at the nanoscale. For the investigation of strongly localized processes, it is essential to resolve both their spatial and their temporal behavior. The aim of this thesis was to study and/or control the temporal evolution of three nanostructure-induced localized light phenomena by using ultrafast laser spectroscopy with high spatial resolution.
In Chapter 4, the absorption of near-infrared light in thin-film a-Si:H solar cells was investigated. Using nanotextured instead of smooth interfaces for such devices leads to an increase of absorption from < 20% to more than 50% in the near-infrared regime. Time-resolved experiments with femtosecond laser pulses were performed to clarify the reason for this enhancement. The coherent backscattered radiation from nanotextured solar cell devices was measured as a function of the sample position and evaluated via spectral interferometry. Spatially varying resonance peaks in the recorded spectra indicated the formation of localized photonic modes within the nanotextured absorber layers. In order to identify the modes separately from each other, coherent two-dimensional (2D) nanoscopy was utilized, providing a high spatial resolution < 40 nm. In a nanoscopy measurement on a modified device with an exposed nanotextured a-Si:H absorber layer, hot-spot electron emission was observed and confirmed the presence of localized modes. Fitting the local 2D nanospectra at the hot-spot positions enabled the determination of the resonance frequencies and coherence lifetimes of the modes. The obtained lifetime values varied between 50 fs and 130 fs. Using a thermionic emission model allowed the calculation of the locally absorbed energy density and, with this, an estimation of the localization length of the photonic modes (≈1 μm). The localization could be classified by means of the estimated localization length and additional data evaluation of the backscattered spectra as strong localization ─ the so-called Anderson localization.
Based on the experimental results, it was concluded that the enhanced absorption of near-infrared light in thin-film silicon solar cells with nanotextured interfaces is caused by the formation of strongly localized photonic modes within the disordered absorber layers. The incoming near-infrared light is trapped in these long-living modes until absorption occurs.
In Chapter 5, a novel hybridized plasmonic device was introduced and investigated in both theory and experiment. It consists of two widely separated whispering gallery mode (WGM) nanoantennas located in an elliptical plasmonic cavity. The goal was to realize a periodic long-range energy transfer between the nanoantennas. In finite-difference time-domain (FDTD) simulations, the device was first optimized with respect to strong coupling between the localized antenna modes and the spatially-extended cavity mode. The geometrical parameters of the antennas and the cavity were adjusted separately so that the m="0" antenna mode and the cavity mode were resonant at λ="800 nm" . A high spatial overlap of the modes was achieved by positioning the two antennas in the focal spots of the cavity, leading to a distance between the antenna centers of more than twice the resonant wavelength of the modes. The spectral response of the optimized device revealed an energy splitting of the antenna and the cavity mode into three separated hybridized eigenmodes within an energy range of about 90 meV due to strong coupling. It could be well reproduced by a simple model of three coupled Lorentzian oscillators. In the time domain, an oscillatory energy transfer between both antennas with a period of 86 fs and an energy transfer efficiency of about 7% was observed for single-pulse excitation. For the experiments, devices with cavities and antennas of varying size were fabricated by means of focused-ion-beam (FIB) milling. Time-resolved correlation measurements were performed with high spatial and temporal resolution by using sequences of two femtosecond laser pulses for excitation and photoemission electron microscopy (PEEM) for detection. Local correlation traces at antennas in resonant devices, i.e., devices with enhanced electron emission at both antenna positions, were investigated and reconstructed by means of the coupled-oscillator model. The corresponding spectral response revealed separated peaks, confirming the formation of hybridized eigenmodes due to strong coupling. In a subsequent simulation for single-pulse excitation, one back-and-forth energy transfer between both antennas with an energy transfer efficiency of about 10% was observed.
Based on the theoretical and experimental results, it was demonstrated that in the presented plasmonic device a periodic long-range energy transfer between the two nanoantennas is possible. Furthermore, the coupled-oscillator model enables one to study in depth how specific device properties impact the temporal electric-field dynamics within the device. This can be exploited to further optimize energy transfer efficiency of the device. Future applications are envisioned in ultrafast plasmonic nanocircuitry. Moreover, the presented device can be employed to realize efficient SPP-mediated strong coupling between widely separated quantum emitters.
In Chapter 6, it was investigated in theory how the local optical chirality enhancement in the near field of plasmonic nanostructures can be optimized by tuning the far-field polarization of the incident light. An analytic expression was derived that enables the calculation of the optimal far-field polarizations, i.e., the two far-field polarizations which lead to the highest positive and negative local optical chirality, for any given nanostructure geometry. The two optimal far-field polarizations depend on the local optical response of the respective nanostructure and thus are functions of both the frequency ω and the position r. Their ellipticities differ only in their sign, i.e., in their direction of rotation in the time domain, and the angle between their orientations, i.e., the angle between the principal axes of their ellipses, is ±π/"2" . The handedness of optimal local optical chirality can be switched by switching between the optimal far-field polarizations. In numerical simulations, it was exemplarily shown for two specific nanostructure assemblies that the optimal local optical chirality can significantly exceed the optical chirality values of circularly polarized light in free space ─ the highest possible values in free space. The corresponding optimal far-field polarizations were different from linear and circular and varied with frequency. Using femtosecond polarization pulse shaping provides the opportunity to coherently control local optical chirality over a continuous frequency range. Furthermore, symmetry properties of nanostructures can be exploited to determine which far-field polarization is optimal.
The theoretical findings can have impact on future experimental studies about local optical chirality enhancement. Tuning the far-field polarization of the incident light offers a promising tool to enhance chirally specific interactions of local electromagnetic fields with molecular and other quantum systems in the vicinity of plasmonic nanostructures. The presented approach can be utilized for applications in chiral sensing of adsorbed molecules, time-resolved chirality-sensitive spectroscopy, and chiral quantum control.
In conclusion, each of the localized light phenomena that were investigated in this thesis ─ the enhanced local absorption of near-infrared light due to the formation of localized photonic modes, the periodic long-range energy transfer between two nanoantennas within an elliptical plasmonic cavity, and the optimization of local optical chirality enhancement by tuning the far-field polarization of the incident light ─ can open up new perspectives for a variety of future applications.
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Covalent peptidomimetic protease inhibitors have gained a lot of attention in drug development in recent years. They are designed to covalently bind the catalytically active amino acids through electrophilic groups called warheads. Covalent inhibition has an advantage in terms of pharmacodynamic properties but can also bear toxicity risks due to non-selective off-target protein binding. Therefore, the right combination of a reactive warhead with a well-suited peptidomimetic sequence is of great importance. Herein, the selectivities of well-known warheads combined with peptidomimetic sequences suited for five different proteases were investigated, highlighting the impact of both structure parts (warhead and peptidomimetic sequence) for affinity and selectivity. Molecular docking gave insights into the predicted binding modes of the inhibitors inside the binding pockets of the different enzymes. Moreover, the warheads were investigated by NMR and LC-MS reactivity assays against serine/threonine and cysteine nucleophile models, as well as by quantum mechanics simulations.
Bei Verbrennungsprozessen im Otto-Motor, beim Raffinationsprozess in Erdölraffinerien, im interstellaren Raum oder in der Chemie der Erdatmosphäre spielen Moleküle, wie sie in dieser Arbeit untersucht wurden, eine wichtige Rolle. Allerdings stellt es eine große Herausforderung dar, solch reaktive Substanzen zu erzeugen und zu handhaben. Um das Ethyl-Radikal, ein wichtiges Intermediat z.B. in der Erzeugung von Ethylen, zu untersuchen, wurde eine bestehende Apparatur modifiziert. Diese ermöglicht es, die Geschwindigkeitsverteilung der Fragmente (Ionen oder Elektronen) zweidimensional aufzuzeichnen, die nach der Anregung mittels Laserlicht durch Photodissoziation entstehen. Diese velocity-map imaging Apparatur wurde in einem ersten Schritt mittels der Photodissoziation von Pyrrol bei 240 nm kalibriert. Cycloheptatrien konnte erfolgreich auf seine Photodissoziation untersucht werden, was als Test des VMI-Experiment genutzt wurde. Die gewonnenen Ergebnisse stimmten mit Resultaten überein, welche durch Doppler-Fragmentspektroskopie in dieser und früheren Arbeiten gewonnen wurden. Zwischen 11 und 13 % der Überschussenergie gehen dabei in die Translation des H-Atoms. • Das Ethyl-Radikal zeigte, als das erste mit unserer VMI-Apparatur untersuchte Radikal, eine interessante Photodissoziation: Wird es bei 250 nm angeregt, ergeben sich zwei Dissoziationskanäle, wobei ein bekannter Kanal nach schneller interner Konversion in den Grundzustand Fragmente mit geringer Translationsenergie erzeugt. Der zweite Kanal zeigt anisotropes Verhalten und erzeugt Wasserstoffatome mit hoher Translationsenergie, die mehr als die Hälfte der Überschussenergie abführen. Die Erklärung dieses Prozesses erweist sich schwierig in Anbetracht von durchgeführten Isotopenmarkierungsexperimenten sowie der beobachteten Ratenkonstanten für die Photodissoziation. Eine Interaktion von Valenz- und Rydbergzuständen im Ethyl-Radikal könnte eine Erklärung darstellen. In Zukunft kann beim VMI-Experiment in Würzburg versucht werden, die Auflösung weiter zu verbessern. Dabei ergäben sich im Idealfall zwei scharfe Ringe der H-Atome durch die Spin-Bahn-Aufspaltung von Brom, welche eine sehr genaue Kalibrierung ermöglichen. Neben den Ergebnissen auf dem Gebiet der Photodissoziation, die mit der VMI-Apparatur erzielt wurden, konnten mittels Synchrotronstrahlung und Aufzeichnen der Photoelektronen mittels VMI und der TPEPICO-Technik die folgenden Ergebnisse erhalten werden: • Von Propargylen, einem von drei C3H2 Isomeren, konnte die adiabatische Ionisierungsenergie (IEad) mit 8.99 eV bestimmt werden. Der Vorläufer Diazopropin, eine sehr instabile Substanz, wurde dazu synthetisiert und mit Synchrotronlicht untersucht. Allerdings war es nicht möglich, die Schwingungen im Kation oder die dissoziative Photoionisation (DPI) des Carbens zu untersuchen, da Diazopropin seinerseits bereits bei Energien von 9 eV durch DPI zerfällt. Allerdings konnte ein Peak im TPES des zyklischen Isomers aus einer früheren Messung eindeutig dem Propargylen zugeordnet werden. Ein Ausweg die DPI zu umgehen stellt die Verwendung eines anderen Vorläufers dar. Beispielsweise wurde dazu Propargylchlorid getestet, welches aber nicht das Propargylen erzeugt, sondern das zyklische Isomer Cyclopropenyliden. Daneben können durch ein Doppel-Imaging Experiment, bei dem die Ionen genauso wie die Elektronen mit einem bildgebenden Detektor aufgezeichnet werden, Ionen mit kinetischer Energie aus DPI von Ionen aus der Ionisation ohne kinetischer Energie unterschieden werden. • Von den substituierten Methyl-Radikalen Brommethyl sowie Cyanomethyl konnte die IEad (8.62 bzw. 10.28 eV) und vom Brommethyl die DPI (AE0K = 13.95 eV) bestimmt werden. Daraus konnte der Einfluss der Substituenten auf die IEad im Vergleich zum Methyl-Radikal (IE = 9.84 eV) gezeigt werden. Das zeigt, dass der Brom-Substituent das Kation, der Cyano-Rest dagegen das Radikal stabilisiert. Ebenso konnten aus den Ergebnissen beim Brommethyl thermodynamische Daten wie die Standardbildungsenthalpie des Radikals (ΔH0f= 174.5 kJ/mol) oder Bindungsenergien gewonnen werden. Letztere betragen 334 kJ/mol für die C-Br Bindung im Brommethyl-Radikal sowie 505 kJ/mol im Kation. • Das Fulvenallen (C7H6) wurde aus Phthalid durch Pyrolyse erzeugt und dessen IEad mit 8.22 eV bestimmt. Schwingungen konnten im Kation aufgelöst und zugeordnet werden. Außerdem konnte erstmals die IEad des Fulvenallenyl-Radikals (C7H5) mit 8.19 eV festgelegt werden. Im Vergleich zu früheren Messungen zeigte sich, dass aus Toluol in der Pyrolyse ebenfalls die beiden C7H5/C7H6 Isomere entstehen. Um verschiedene C7H5/C7H6 Isomere in einem Verbrennungsprozess zu unterscheiden, wäre es vorteilhaft, experimentell bestimmte Ionisierungsenergien von anderen Isomeren zu kennen.
Isolated 2‐phenylallyl radicals (2‐PA), generated by pyrolysis from a nitrite precursor, have been investigated by IR/UV ion dip spectroscopy using free electron laser radiation. 2‐PA is a resonance‐stabilized radical that is considered to be involved in the formation of polycyclic aromatic hydrocarbons (PAH) in combustion, but also in interstellar space. The radical is identified based on its gas‐phase IR spectrum. Furthermore, a number of bimolecular reaction products are identified, showing that the self‐reaction as well as reactions with unimolecular decomposition products of 2‐PA form several PAH efficiently. Possible mechanisms are discussed and the chemistry of 2‐PA is compared with the one of the related 2‐methylallyl and phenylpropargyl radicals.
Reactive hydrocarbon species are important in a multitude of different scientific areas. In this thesis, the vibrational spectra of hydrocarbon radicals, biradicals and their reaction product have been studied in a gas-phase environment. The specific molecules investigated here, are of particular importance in the field of combustion and astrochemistry. They were produced from suitable precursors in a pyrolytically heated micro-reactor and subsequently seeded in an appropriate carrier gas. As methodology, IR/UV ion dip spectroscopy has been utilized, which delivers massselected gas-phase IR spectra of all ionizable species detectable in the molecular beam. These, with the help of DFT calculations, allow for determination of the fingerprint IR spectra, identification of mass carriers and formulation of potential reaction mechanisms. All studies have been conducted in collaboration with the group of Prof. Dr. Anouk M. Rjis and the necessary potent IR radiation has been provided by the free-electron laser FELIX. Thus, the IR/UV measurements have been executed at the FELIX Laboratory of the Radboud University in Nijmegen. The first study presented in this thesis is the investigation of ortho-benzyne in Chapter 3.1. This molecule is of particular interest due to its uncommon electronic structure and its role in high-temperature reactions. Although, the infrared spectrum of o-C6H4 was not accessible, a number of reaction products were identified via their fingerprint spectra. Masses in the range from 78 - 228 were assigned to their respective carrier. The identified species include typical PAHs like naphthalene, phenanthrene, up to triphenylene. The identified masses further suggest a PAH growth heavily influenced by diradical 1,4-cycloaddition followed by fragmentation, as well as by classical HACA- and PAC-like mechanisms. These results were augmented by threshold photoionization measurements from Engelbert Reusch, who identified lighter reaction products, which have insufficient IR absorption or unsuitable ionization characteristics to be identified in the IR/UV experiment. An interesting observation is the identification of m/z = 152. This carrier has been assigned differently by the IR and TPES experiments. Whereas the IR spectrum clearly identifies the species as 2-ethynylnaphthalene, the TPES evidently is in great agreement with biphenylene. This is a good example how different experimental methodologies can benefit from each other to gain a deeper insight into the actual science of a particular system. Probably, the prime example for an aromatically resonance stabilized radical is benzyl. This radical is of high importance for many combustion studies, as it represents the primary high-temperature decomposition product of toluene. The goal of the study was the identification of the benzyl self reaction products and the results are discussed in Section 3.2. The radical was pyrolytically produced by its respective nitrite precursor. The mass spectrum showed that the benzyl self reaction formed two products with C11 and three with C14 constitution. All mass peaks were evenly spaced by two mass units, respectively, which suggests a close relation in formation. Indeed, the C11 products were identified as diphenylmethane and fluorene, which are simply connected via cyclization. The heaviest product was identified as phenanthrene, which is formed via the cyclization of bibenzyl to 9,10-dihydrophenanthrene and subsequent elimination of hydrogen. This result was quiet interesting as the intermediate of this reaction was often assumed to be stilbene, which was not observed in the study. Hence, the reaction seems to undergo cyclization first before phenanthrene is finally formed via hydrogen elimination. Expanding the molecular frame of benzyl by an additional methyl group leads to the xylyl radicals and its decomposition product the xylylenes. Also important in combustion research, xylyl radicals represent the preferred decomposition products of xylene, a frequently used anti-knock agent in modern gasoline blends. After further hydrogen elimination the xylyl radicals can then form their respective xylylenes. The results of the xylyl experiments are discussed in Section 3.3. Here the gas-phase vibrational spectrum in the fingerprint region for all three isomers has been recorded for the first time in isolation. Although, all isomers have a very similar structure and symmetry, and consequently similar vibrational bands, the resolution of the experimental data was exceedingly sufficient for a clear assignment. Additionally, the dimerization products of meta- and para-xylyl could also be identified. A similar approach was taken to determine the fingerprint spectra for the xylylenes. Here, only para-xylylene could be unambiguously identified as the carrier of mass 104. For both ortho- and meta-xylylene precursors, only isomerization products were observed as the carriers of mass 104; benzocyclobutene and styrene, respectively. A possible explanation is elaborated upon in the troubleshooting Sec- tion 3.4.3.5. In the final experimental section a study on the decomposition of phthalide is presented. The objective of this experiment was mainly focused around the formation of C7 species, particularly the fulvenallenyl radical C7H5. In fact, the first experimental fingerprint spectrum of isolated C7H5 in the gas-phase was measured and is displayed in Fig. 3.45. Furthermore, the experiment demonstrates that the pyrolysis products of phthalide are excellent soot precursors, as many heavier reaction products have been identified. These include typical PAH species like naphthalene and phenanthrene as well as their methylated isomers. A large number of molecules with terminal ethynyl moieties indicate a strong influence of HACA growth in the experimental environment. However, many formation pathways of products have been discussed, which are formed involving experiment specific species, like C5H5 and C7H5, and often include expansion steps from 5- to 6-membered rings.
The concepts of aromaticity and antiaromaticity have a long history, and countless demonstrations of these phenomena have been made with molecules based on elements from the p, d, and f blocks of the periodic table. In contrast, the limited oxidation‐state flexibility of the s‐block metals has long stood in the way of their participation in sophisticated π‐bonding arrangements, and truly antiaromatic systems containing s‐block metals are altogether absent or remain poorly defined. Using spectroscopic, structural, and computational techniques, we present herein the synthesis and authentication of a heterocyclic compound containing the alkaline earth metal beryllium that exhibits significant antiaromaticity, and detail its chemical reduction and Lewis‐base‐coordination chemistry.
Molecules containing multiple bonds between atoms—most often in the form of olefins—are ubiquitous in nature, commerce, and science, and as such have a huge impact on everyday life. Given their prominence, over the last few decades, frequent attempts have been made to perturb the structure and reactivity of multiply-bound species through bending and twisting. However, only modest success has been achieved in the quest to completely twist double bonds in order to homolytically cleave the associated π bond. Here, we present the isolation of double-bond-containing species based on boron, as well as their fully twisted diradical congeners, by the incorporation of attached groups with different electronic properties. The compounds comprise a structurally authenticated set of diamagnetic multiply-bound and diradical singly-bound congeners of the same class of compound.
Molecules containing multiple bonds between atoms—most often in the form of olefins—are ubiquitous in nature, commerce, and science, and as such have a huge impact on everyday life. Given their prominence, over the last few decades, frequent attempts have been made to perturb the structure and reactivity of multiply-bound species through bending and twisting. However, only modest success has been achieved in the quest to completely twist double bonds in order to homolytically cleave the associated π bond. Here, we present the isolation of double-bond-containing species based on boron, as well as their fully twisted diradical congeners, by the incorporation of attached groups with different electronic properties. The compounds comprise a structurally authenticated set of diamagnetic multiply-bound and diradical singly-bound congeners of the same class of compound.
The NHC-stabilised diboryne (B\(_2\)(SIDep)\(_2\); SIDep=1,3-bis(2,6-diethylphenyl)imidazolin-2-ylidene) undergoes a high-yielding P−P bond activation with tetraethyldiphosphine at room temperature to form a B\(_2\)P\(_2\) heterocycle via a diphosphoryldiborene by 1,2-diphosphination. The heterocycle can be oxidised to a radical cation and a dication, respectively, depending on the oxidant used and its counterion. Starting from the planar, neutral 1,3-bis(alkylidene)-1,3-diborata-2,4-diphosphoniocyclobutane, each oxidation step leads to decreased B−B distances and loss of planarity by cationisation. X-ray analyses in conjunction with DFT and CASSCF/NEVPT2 calculations reveal closed-shell singlet, butterfly-shaped structures for the NHC-stabilised dicationic B\(_2\)P\(_2\) rings, with their diradicaloid, planar-ring isomers lying close in energy.
Zur Charakterisierung der Wechselwirkungen zwischen organischen Dispergiermitteln und nanoskaligen Oberflächen stellen Komplexe aus Kohlenstoffnanoröhren und (Bio-)Polymeren aufgrund der großen Oberfläche der Nanoröhren und der kommerziellen Verfügbarkeit fluoreszenzmarkierter DNA-Oligomere unterschiedlicher Länge sowie intrinsisch fluoreszierender Polymere ein vielversprechendes Modellsystem dar. Im Rahmen der vorliegenden Dissertation wurden verschiedene Methoden evaluiert, um die Stabilität derartiger Komplexe zu untersuchen und dadurch Rückschlüsse auf das Adsorptionsverhalten der (Bio-)Polymere zu ziehen. Dabei konnte gezeigt werden, dass das publizierte helikale Adsorptionsmodell der DNA auf Kohlenstoffnanoröhren die Resultate der durchgeführten Experimente nur unzureichend beschreiben kann und stattdessen andere Adsorptionskonformationen in Erwägung gezogen werden müssen.
Unter dem Gesichtspunkt kohärenter Wellenpaketdynamik werden in dieser Arbeit zwei Themenfelder untersucht: Zum einen die Auswirkungen von Kernfreiheitsgraden auf die zweidimensionale vibronische Spektroskopie (2D-Spektroskopie) und zum anderen photoinduzierte Energieverlustmechanismen in organischen Halbleitern. Im ersten Abschnitt wird am numerischen Beispiel zweiatomiger Moleküle gezeigt, dass sich die Anharmonizität der Wellenpaketbewegung durch Variation der Verzögerungszeit der Femtosekundenpulse in der komplexwertigen Spektralfunktion, die aus der störungstheoretischen Berechnung der Polarisationsfunktion hervorgeht, widerspiegelt. Die zeitliche Entwicklung besetzter Vibrationszustände zeigt sich in der Struktur des Signals anhand sogenannter Quantenphasen. Durch Variation der Pulsparameter und -reihenfolge kann dabei die Quantendynamik in unterschiedlichen elektronischen Zuständen charakterisiert werden. Im zweiten Teil der Arbeit wird für molekulare Aggregate (3,4,9,10-Perylentetracarbonsäurediimid und 3,4,9,10-Perylentetracarbonsäuredianhydrid) ein zeitaufgelöstes, atomistisches Bild intra- und intermolekularer Strukturverzerrungen vorgestellt. Letztere induzieren eine ultraschnelle Depopulation der durch Photoabsorption angeregten elektronischen Zustände, was mit einer deutlichen Abnahme der Anregungsenergie einhergeht.
In this work a new algorithm to determine quantum control fields from the instantaneous response of systems has been developed. The derived fields allow to establish a direct connection between the applied perturbation and the molecular dynamics. The principle is most easily illustrated in regarding a classical forced oscillator. A particle moving inside the respective potential is accelerated if an external field is applied acting in the same direction as its momentum (heating). In contrary, a deceleration is achieved by a field acting in the opposite direction as the momentum (cooling). Furthermore, when the particle reaches a classical turning point and then changes its direction, the sign of the field has to be changed to further drive the system in the desired way. The frequency of the field therefore is in resonance with the oscillator. This intuitively clear picture of a driven classical oscillator can be used for directing (or controlling) quantum mechanical wave packet motion. The efficiency of the instantaneous dynamics algorithm was demonstrated in treating various model problems, the population transfer in double well potentials, excitation and dissociation of selective modes, and the population transfer between electronic states. Although it was not tried to optimize the fields to gain higher yields, the control was found to be very efficient. Driving population transfer in a double well potential could be shown to take place with nearly 100% efficiency. It was shown that selective dissociation within the electronic ground state of HOD can be performed by either maximizing a selected coordinate's differential momentum change or the energy absorption. Concerning the population transfer into excited electronic states, a direct comparison with common control algorithms as optimal control theory and genetic algorithms was accomplished using a one-dimensional representation of methyl iodide. The fields derived from the various control theories were effective in transferring population into the chosen target state but the underlying physical background of the derived optimal fields was not obvious to explain. The instantaneous dynamics algorithm allowed to establish a direct relation between the derived fields and the underlying molecular dynamics. Bound-to-bound transitions could be handled more effectively. This was demonstrated on the sodium dimer in a representation of 3 electronic states being initially in its vibronic ground state. The objective was to transfer population into a predefined excited state. Choosing the first or the second state as a target, the control fields exhibited quite different features. The pulse-structure is related to the excited state wave packet, moving in, and out of the Franck-Condon region. Changing the control objective, the derived control field performed pure electronic transitions on a fast time-scale via a two-step transition. Futhermore, orientational effects have been investigated. The overall-efficiency of the population transfer for differently oriented molecules was about 70 % or more if applying a control field derived for a 45° orientation. Spectroscopic methods to gain information about the outcome of the control process have been investigated. It was shown that pump/probe femtosecond ionization spectroscopy is suited to monitor time-dependent molecular probability distributions. In particular, time-dependent photoelectron spectra are able to monitor the population in the various electronic states. In the last chapter a different possibility of controlling molecules was regarded by investigating molecular iodine with a setup similar to the STIRAP (“Stimulated Raman Adiabatic passage”) scenario. The possibility to extend this technique to a fs-time scale was examined in theory as well as in experiments, the latter being performed by Dr. Torsten Siebert in the Kiefer group, University of Würzburg. It was shown that off-resonant excitation with implementation of the pulses with a higher intensity of the Stokes pulse as compared to the pump pulse - describing a so-called f-STIRAP like configuration - was shown to effectively transfer population into excited ground-state vibrational levels. This was theoretically underlined by comparing the numerically exact coupling case with the adiabatic picture. The process was described to run in the vicinity of adibaticity. A new model explaining the process by the system's vector rotating around the dressed state vector will be adopted in future calculations. Altogether, a new promising algorithm to control dynamical processes based on the instantaneous response has been developed. Because the derived control fields have been shown to be very efficient in selectively influencing molecules, it is to be expected that farther reaching applications can be realized in future investigations.
The present work consist of two major parts. The first part, extending over chapters 1, 2, 3 and 4, addresses the design and construction of a device capable of determining the shell thickness and the core size for monolayer spherical particles in a flow. The second part containing chapters 5, 6, 7, 8, 9 and 10, concentrate on the use of Raman spectroscopy as a space application, namely for use as a tool for in situ planetary investigations. This part directly addresses the MIRAS project, a study run under the auspices of Federal Ministry of Education and Research, BMBF and German Aerospace Center, DLR under national registration number 50OW0103. MIRAS stands for "Mineral Investigation by in situ Raman Spectroscopy". Microcapsule Sizing by Elastic Light Scattering The industrial development of processes based on microcapsules depends on the possibility to provide clear and complete information about the properties of these microcapsules. However, the tools for an easy and efficient determination of the microcapsule properties are lacking, several methods being often required to describe adequately the microcapsule behavior. Methods for evaluating the individual size and size distribution of both the core and the shell are required together with methods for measuring the mechanical strength, stability in appli-cation media, permeability of the shell, etc. Elastic light scattering measurements provide a possible way of determining properties such as core size, shell size and refractive index. The design and con-struction of a device capable of measuring the above mentioned parameters for a core-shell particle is the subject of the first part of this thesis. The basic principle of measurement for the device proposed here consists of an-alyzing one particle at a time by recording the elastic light scattering pattern at angles between approx. 60 and 120 grad. By comparing the experimentally recorded phase functions with the previously calculated phase functions stored in a database, the geometry of the scattering object can be identified. In our case the geometry is characterized by two parameters: the shell thickness and the core radius. In chapter 2 a short overview on the methods used for sizing microparticles is given. Different sizing methods are compared, and the advantages and disadvan-tages for the general problem of sizing are shortly discussed. It is observed that all sizing methods that are based on elastic light scattering theories are ensemble methods. Chapter 3 focusses on the theories used for calculating the theoretical scattering patterns with emphasize on the Mie theory. The generalization of Mie theory for layered particles is shortly presented and the far field intensity approximations are discussed. The last chapter (4) of this first part describes the experimental approach for building an automatic microcapsule sizer. The approach started by O. Sbanski [76] with the development of a software packet for calculating and storing theoret-ical phase functions for core-shell particles was continued with the designing and construction of a measuring device. The hardware construction and the software with all implemented corrections imposed by the individual setup components are described in detail. For the laser, the monochromaticity, the intensity profile of the beam as well as the planarity of the equi-phase fronts are taken into consid-eration. The flow cell with three different designs is described, and the influences of the employed design on the light scattering patterns are discussed together with the optical system used for recording the experimental phase functions. The detection system formed by two identical linear CCD arrays is presented together with the software approach used for data acquisition. Ways of improving the quality and the speed of the analyzing process are discussed. The final section presents measurements run on samples made of homogeneous spheres and also on samples containing industrial microcapsules. Mineral Investigation by in situ Raman Spectroscopy The envisaged future planetary missions require space-born instruments, which are highly miniaturized with respect to volume and mass and which have low needs of power. A micro Raman spectrometer as a stand alone device on a planetary surface (e.g. Mars) offers a wide spectrum of possibilities. It can assess the chemical analysis via determination of the mineral composition, detect organic molecules in the soil, identify the principal mineral phases, etc. The technical developments in the last years have introduced a new generation of small Raman systems suitable for robotic mineral characterization on planetary surfaces [20, 95]. Two different types of spectrometer were considered for the MIRAS study. As supporting laboratory experiments for the MIRAS study, the measure-ments on standard minerals and on SNC Mars meteorites are discussed in chapter 6. The following SNC meteorites have been investigated: Sayh al Uhaymir 060, Dar al Gani 735, Dar al Gani 476, Northwest Africa 856, Los Angeles, Northwest Africa 1068 and Zagami. Pyrite as a hitherto undescribed phase in the picritic (olivin-phyric) shergottite NWA 1068 as well as reduced carbon (e.g. graphite) and anatase in the shergottite Say al Uhaymir 060 are new findings for this class of meteorites. A detailed description of the proposed designs for MIRAS, with the compo-nents used for building the test version on a breadboard is covered in chapter 7. The scientific as well as the mission requirements imposed on the instrument are discussed. The basic design is presented and the main components that are brought together to build the device being the laser unit, the Raman head, the Rayleigh filtering box, and the spectral sensor (spectrometer with a matching de-tector) are described. The two proposed designs, one based on an acousto-optic tunable filter (AOTF) and the other based on a dispersive hadamard transform spectrometer are compared to each other. The actual breadboard setup with the detailed description of the components follows in Section 7.3. Further de-velopment of a Raman spectrometer for planetary investigations is proposed in combination with a microscope as part of the Extended-MIRAS project. The software developed for controlling the breadboard version of MIRAS is described in chapter 8 together with a short description of the structure of a relational database used for in house spectra management. The measuring pro-cedures and the data processing steps are presented. Spectra acquired with the MIRAS breadboard version based on the AOTF are shown in chapter 9. The final chapter addresses a rather different possibility of using Raman spectroscopy for planetary investigations. The chapter summarizes the content of four tech-nical notes that were established within the study contracted by the European Space Agency with firma Kayser-Threde in Munich concerning the possibility of applying Raman spectroscopy in the field of remote imaging.
Doping plays a decisive role for the functionality of semiconductor-based (opto-)electronic
devices. Hence, the technological utilization of semiconductors necessitates control and a
fundamental understanding of the doping process. However, for low-dimensional systems like
carbon nanotubes, neither concentration nor distribution of charge carriers is currently well known.
The research presented in this thesis investigated the doping of semiconducting carbon nanotubes by spectroscopic methods. Samples of highly purified, intrinsic (6,5) single-wall carbon nanotubes were fabricated using polymer stabilization.
Chapter 4 showed that both electro- and redox chemical $p$-doping lead to identical bleaching,
blueshift, broadening and asymmetry of the S$_1$ exciton absorption band. The similar spectral changes induced by both doping schemes suggest that optical spectra can not be used to infer what process was used for doping. Perhaps more importantly, it also indicates that the distribution of charges and the character of the charge transfer states does not depend on the method by which doping was achieved.
The detailed analysis of the doping-induced spectral changes in chapter 5 suggests that surplus charges are distributed inhomogeneously. The hypothesis of carrier localization is consistent with the high sensitivity of the S$_1$ exciton photoluminescence to additional charge carriers and with the stretched-exponential decay of the exciton population following ultrafast excitation.
Both aspects are in good agreement with diffusion-limited contact quenching of excitons
at localized charges. Moreover, localized charges act – similar to structural defects – as
perturbations to the bandstructure as evidenced by a doping-induced increase of the D-band
antiresonance in the mid-infrared spectrum.
Quantum mechanical model calculations also suggest that counterions play a crucial role in
carrier localization. Counterion adsorption at the nanotube surface is thus believed to induce charge traps of more than 100 meV depth with a carrier localization length on the order of 3 - 4 nm. The doping-induced bleach of interband absorption is accompanied by an absorption increase in the IR region below 600 meV. The observed shift of the IR peak position indicates a continuous transition from localized to rather delocalized charge carriers. This transition is caused by the increase of the overlap of charge carrier wavefunctions at higher charge densities and was modeled by classical Monte-Carlo simulations of intraband absorption.
Chapter 6 discussed the spectroscopy of heavily (degenerately) doped nanotubes, which are
characterized by a Drude-response of free-carrier intraband absorption in the optical conductivity spectrum. In the NIR spectral region, the S$_1$ exciton and X$+^_1$ trion absorption is replaced by a nearly 1 eV broad and constant absorption signal, the so-called H-band. The linear and transient absorption spectra of heavily doped nanotubes suggest that the H-band can be attributed to free-carrier interband transitions.
Chapter 7 dealt with the quantification of charge carrier densities by linear absorption spectroscopy.
A particularly good measure of the carrier density is the S$_1$ exciton bleach. For a
bleach below about 50 %, the carrier density is proportional to the bleach. At higher doping
levels, deviations from the linear behavior were observed. For doping levels exceeding a
fully bleached S$_1$ band, the determination of the normalized oscillator strength f$\text{1st}$ over the
whole first subband region (trion, exciton, free e-h pairs) is recommended for quantification of carrier densities. Based on the nanotube density of states, the carrier density $n$ can be estimated using $n = 0.74\,\text{nm}^{−1} \cdot (1 − f_\text{1st})$.
In the last part of this thesis (chapter 8), the time-resolved spectroelectrochemistry was
extended to systems beyond photostable carbon nanotube films. The integration of a flowelectrolysis cell into the transient absorption spectrometer allows the investigation of in-situ electrochemically generated but photounstable molecules due to a continuous exchange of sample volume. First time-resolved experiments were successfully performed using the dye
methylene blue and its electrochemically reduced form leucomethylene blue.
Im Rahmen dieser Dissertation wurden insgesamt drei verschiedene Fragestellungen an biologisch relevanten Modellsystemen mit Hilfe von diversen linearen und nichtlinearen Raman-spektroskopischen Techniken bearbeitet. Neben der Untersuchung von Wasserstoffbrücken-gebundenen Komplexen und ihrer Dynamik auf der fs-Zeitskala (Kapitel 4) bildeten Untersuchungen zur Struktur von Porphyrinen (Kapitel 5) und beta-Carotin (Kapitel 6) als Vertreter wichtiger Klassen von Biomolekülen den Schwerpunkt dieser Arbeit. Die spektroskopischen Ergebnisse wurden durchweg über Strukturen und Schwingungsspektren, welche mit Hilfe der Dichtefunktionaltheorie (DFT) berechnet wurden, unterstützt. Die dritte bearbeitete Thematik zum Nachweis anthropogener und ökologisch relevanter Aerosole war bioanalytisch motiviert und wurde anhand von Pestizid-Modellsubstanzen bearbeitet (Kapitel 7).
Diese Arbeit befasst sich mit verschiedenen Aspekten der Dynamik von Kernen, Elektronen und gekoppelten Kern-Elektron-Systemen, wobei je nach System unterschiedliche Herangehensweisen gewählt wurden.
Zentrale Punkte sind bei allen drei Kapiteln einerseits die Lokalisierung von Teilchen und Energie und andererseits eine hohe Sensitivität in Bezug auf die Wahl der Anfangsbedingungen.
Im ersten Teil wurden von der Carrier-Envelope-Phase (CEP) abhängende, laser-induzierte Lokalisierungen betrachtet. Das zentrale Element ist dabei das entwickelte Doppelpulsschema, mit welchem eine CEP-Abhängigkeit in beobachtbaren Größen erzeugt wird. Als Beispielsysteme wurden die Fragmentation im D₂⁺-Modellsystem und eine Isomerisierung im Doppelminimumpotential (DMP) untersucht. Als Observable wird die Asymmetrie betrachtet
Im DMP kann die Asymmetrie mit dem Entantiomeren/Isomerenüberschuss gleich gesetzt werden kann und im D₂⁺-Modellsystem mit der Lokalisierung des Elektrons auf einem der beiden dissoziierenden Kerne.
Eine Phasenabhängigkeit der Asymmetrien besteht nur für die CEP des zweiten Pulses φ₂, für welchen keine Begrenzungen für die Anzahl an Laserzyklen auftreten.
Im DMP wurde die CEP-Abhängigkeit der Asymmetrien auch bei unterschiedlichen Startkonfigurationen untersucht. Für alle untersuchten Startkonfigurationen konnte ein Laserparametersatz gefunden werden, der für zumindest eine der beiden Asymmetrien eine CEP-Abhängigkeit liefert. Aufgrund der aufgehobenen energetischen Entartung der Paare gerader und ungerader Symmetrie ist die resultierende Lokalisierung zeitabhängig. Zur Messung der vorhergesagten Dynamiken ist z.B. die Aufnahme eines Photoelektronen-Spektrums denkbar.
In nächsten Kapitel wurden unterschiedliche Dynamiken innerhalb eines 4d Kern-Elektron-Modells in der Nähe einer konischen Durchschneidung (CI) zweier Potentiale betrachtet. Hierbei ist hervorzuheben, dass eine solche gleichzeitige Untersuchung von Kern- und Elektron-Dynamik in Systemen mit CIs in der Literatur, nach Wissen des Autors, bisher nicht veröffentlicht ist. Das 4d-Potential wurde mit Hilfe des sogenannten Potfit-Algorithmus gefittet. Dieser Fit wurde anschließend verwendet, um die Dynamik des gekoppelten Systems mit Hilfe der ”Multi-Configuration Time-Dependent Hartree”(MCTDH)-Methode zu berechnen. Aus der Analyse der gekoppelten Kern-Elektron-Wellenfunktion ergaben sich zwei grundlegend unterschiedliche Klassen von Dynamiken:
• Diabatisch: Kern- und Elektrondynamik sind nahezu entkoppelt. Der Kern bewegt sich und das Elektron bleibt statisch.
• Adiabatisch: Kern- und Elektrondynamik sind stark gekoppelt. Die Kerndynamik findet auf Kreisbahnen statt. Mit der Rotation der Kerndichte um den Winkel φ geht eine Rotation der Elektron-Dichte einher.
Die diabatische Bewegung entspricht der Dynamik durch die konische Durchschneidung und die adiabatische Bewegung der Dynamik auf der unteren Potentialfläche. Welche der beiden Dynamiken stattfindet, wird durch die Wahl der Anfangsbedingung bestimmt. Der wesentliche Unterschied zwischen den beiden Startzuständen ist dabei die Lage des Knotens im elektronischen Anteil der Wellenfunktion. In den diabatischen Bewegungen bleibt z.B. der pₓ -artige Charakter der elektronischen Wellenfunktion konstant, wohingegen sich bei der adiabatischen Dynamik der Charakter mit der Kernbewegung ändert. Die Zeitersparnis durch die Verwendung des MCTDH-Ansatzes im Vergleich zur Split-Operator-Methode liegt etwa bei einem Faktor 5.
Das letzte Kapitel widmet sich der mikroskopischen Beschreibung von Exziton-Exziton-
Annihilierung (EEA). Dabei werden numerische Lösungen der aus einem mikro-
skopischen Modell hergeleiteten Ratengleichungen mit Messungen ( transienter Absorption) verglichen. Es wurden zwei Systeme untersucht: ein Squarain-basiertes Heteropolymer (SQA-SQB)ₙ und ein [2-methoxy-5-(2-ethylhexyloxy)-1,4-phenylenvinylen]-Polymer, auch bekannt als MEH-PPV. In beiden Fällen gelang die systematische Parameterbestimmung mit Hilfe einer Aufteilung in lokalisierte Subsysteme. Diese Subsysteme werden einzeln gewichtet und anschließend aufsummiert, wobei die Gewichte optimiert werden können. Aus den so erhaltenen Parametern ergibt sich für beide Systeme ein ähnliches Bild:
• Durch ultraschnelle Lokalisierung der Anregung im fs-Bereich auf kleinere Aggregateinheiten bilden sich voneinander getrennte Subsysteme.
• Die in den Subsystemen lokalisierten Exzitonen können sich nur innerhalb dieser Bereiche frei bewegen. Es ist ausreichend, direkt benachbarte Mono-, Bi-, Tri- und Tetra-Exzitonen in bis zu zwei Dimensionen zu berücksichtigen.
• Auf einer fs-Zeitskala annihilieren direkt benachbarte Exzitonen.
• Im MEH-PPV ergibt sich der Signalzerfall im fs-Bereich als Mittelwert aus einer schnellen (zwischen Ketten) und einer langsamen (innerhalb von Ketten) Annihilierung.
• Im ps- bis ns-Bereich wird sowohl durch Diffusion vermittelte Annihilierung, also auch der Zerfall der ersten angeregten Zustände bedeutsam.
Immature or semi-mature dendritic cells (DCs) represent tolerogenic maturation stages that can convert naive T cells into Foxp3\(^{+}\) induced regulatory T cells (iTreg). Here we found that murine bone marrow-derived DCs (BM-DCs) treated with cholera toxin (CT) matured by up-regulating MHC-II and costimulatory molecules using either high or low doses of CT (CT\(^{hi}\), CT\(^{lo}\)) or with cAMP, a known mediator CT signals. However, all three conditions also induced mRNA of both isoforms of the tolerogenic molecule cytotoxic T lymphocyte antigen 2 (CTLA-2α and CTLA-2β). Only DCs matured under CT\(^{hi}\) conditions secreted IL-1β, IL-6 and IL-23 leading to the instruction of Th17 cell polarization. In contrast, CT\(^{lo}\)- or cAMP-DCs resembled semi-mature DCs and enhanced TGF-β-dependent Foxp3\(^{+}\) iTreg conversion. iTreg conversion could be reduced using siRNA blocking of CTLA-2 and reversely, addition of recombinant CTLA-2α increased iTreg conversion in vitro. Injection of CT\(^{lo}\)- or cAMP-DCs exerted MOG peptide-specific protective effects in experimental autoimmune encephalomyelitis (EAE) by inducing Foxp3\(^{+}\) Tregs and reducing Th17 responses. Together, we identified CTLA-2 production by DCs as a novel tolerogenic mediator of TGF-β-mediated iTreg induction in vitro and in vivo. The CT-induced and cAMP-mediated up-regulation of CTLA-2 also may point to a novel immune evasion mechanism of Vibrio cholerae.