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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).
Iodine oxides appear as reactive intermediates in atmospheric chemistry. Here, we investigate IO and HOI by mass‐selective threshold photoelectron spectroscopy (ms‐TPES), using synchrotron radiation. IO and HOI are generated by photolyzing iodine in the presence of ozone. For both molecules, accurate ionization energies are determined, 9.71±0.02 eV for IO and 9.79±0.02 eV for HOI. The strong spin‐spin interaction in the 3Σ− ground state of IO+ leads to an energy splitting into the Ω=0 and Ω=±1 sublevels. Upon ionization, the I−O bond shortens significantly in both molecules; thus, a vibrational progression, assigned to the I−O stretch, is apparent in both spectra.
Using Photoionization to Investigate Reactive Boron Species and the Kinetics of Hydrocarbon Radicals
(2021)
This thesis highlights the importance of isomer-selective approaches for the complete analysis of chemical processes. The method of choice is photoelectron/photoion coincidence spectroscopy, which allows simultaneous detection of electrons and ions coming from a single ionization event. Ionization techniques are sensitive and can record multiple species simultaneously, rendering them ideal tools to probe molecular transformations. Coupling these setups to synchrotron radiation allows one to analyze complex mixtures with isomer selectivity, based on ionization energies and vibrational structure in the cation, without any prior separation steps. Only few setups exist that can be used to gather these data, although their impact and applicability is growing steadily in various fields. For closed-shell species an easier and more widely used method is gas-chromatography, but most open shell species would not survive the separation process. Due to the reactivity of radicals they have to be created by selectively converting stable precursor molecules. Depending on the radical generation method different properties can be investigated ranging from thermodynamic data, over concentrations in high temperature environments, to chemical kinetics.
The first part of this thesis deals with the determination of bimolecular rate constants. Isomeric hydrocarbon radicals were generated by a high intense UV light pulses and their kinetics with oxygen was measured. The pressure dependence of different isomers in the falloff region was compared to theoretical models, and their reactivity could be explained.
The second part deals with boron containing compounds in various electronic situations. The corresponding precursors were successfully synthesized or could be bought. They were subjected to fluorine atoms in chemical reactors or destroyed pyrolytically at high temperatures. Most investigated species exhibited vibronic effects that could be elucidated using high level computations.
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.
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.
Im Rahmen der vorliegenden Arbeit wurde durch einzelmolekülspektroskopischer bzw. -mikroskopischer Methoden in Kombination mit einer mikrofluischen Zel- le unter Potenzialkontrolle die Elektrochemie von einzelnen einwandigen (6,5)- Kohlenstoffnanoröhren untersucht. Hierfür wurde ein Nahinfrarot-Photolumineszenz- Mikroskop aufgebaut und eine speziell an die experimentellen Vorgaben angepasste elektrochemische Zelle entwickelt, insofern als drei Elektroden (Arbeits-, Gegen- und Referenzelektrode) in einen mikrofluidischen Chip integriert wurden. Darüber hinaus war für die Durchführung der Experimente unter Wasser- und Sauerstoffaus- schluss die Konstruktion eines Handschuhkastens notwendig, sowie eine allgemeine Vorbehandlung der Elektrolytlösungen zur Entfernung gelöster Gase und Wasserreste.
Ein weiteres Projekt umfasste den Aufbau einer chemischen Gasphasenabschei- dungsapparatur zur Synthese von Kohlenstoffnanoröhren. Die hierbei durchgeführten Experimente erbrachten Klarheit über den Einfluss der Prozessparameter Druck, Temperatur und Durchflussrate an Edukten.
Aus den PL-Intensitätsänderungen bei Potenzialvariation konnten Reduktions- und Oxidationspotenziale (ERed = 0.15 V; EOx = 1.34 V) einzelner (6,5)-SWNTs gegen- über einer Platin Referenzelektrode und einem daraus resultierenden Redoxpotenzial
von ∆ERedOx = 1.19 V ermittelt werden. Durch diese einzelmolekülspektroskopische
Methode konnte zum einen gewährleistet werden, dass nur dieser spezielle Chira- litätstyp untersucht wurde und zum anderen eine Verfälschung der Resultate durch einen Potenzialabfall wie er typischerweise in CNT-Filmen auftritt aussgeschlossen werden. Eine Kombination der PL-Daten mit der Ramanintensitätsabhängigkeit des (6,5)-SWNT-S2-Übergangs bei Potenzialvariation erlaubte eine genauere Analyse des Löschmechanismus der PL von Kohlenstoffnanoröhren. Mithilfe eines von Her- tel et al. entwickelten diffusionslimitierten Stoßdesaktivierungsmodells konnte eine invers-quadratische Proportionalität zwischen der (6,5)-SWNT-Emission und den spannungsinduzierten Ladungsträgern ausgemacht werden. Auf Grundlage dieses Ergebnisses folgt, dass die über Photolumineszenzänderungen ermittelten Reduktions-und Oxidationswerte nicht mit den Bandkanten der CNTs übereinstimmen müssen, und dass für deren Bestimmung vielmehr auf Raman- bzw. Absorptionsspektroskopi- sche Techniken zurückgegriffen werden muss.
Die einzelmolekülspektroskopische Herangehensweise ermöglichte ferner eine statis- tische Analyse der Verteilung der Reduktions- und Oxidationspotenziale im Vergleich zu den jeweiligen Erwartungswerten. Hierdurch konnte eine Einteilung der Modifika- tionseinflüsse auf das SWNT-Redoxverhalten in zwei Grenzfälle erfolgen. Es wurde angenommen, dass diese als “Dispergiermitteleffekte” und “CNT-Strukturdefekte” be- zeichneten Auswirkungen entweder das Resultat einer heterodispersen Verteilung an DOC auf der CNT-Oberfläche oder eine Folge von Defekten in der CNT-Gitterstruktur waren. In diesem Zusammenhang ergab sich aus der interpartikulären Analyse der Reduktions- und Oxidationswerte eine Korrelation, die einem dominierenden Einfluss der “CNT-Strukturdefekte” zugeordnet werden konnte. Dieser Beobachtung entgegen- gesetzt konnten aber auch über Untersuchungen der Redoxpotenziale innerhalb einer (6,5)-SWNT lokale Bereiche ausgemacht werden, die eine signifikante Abhängigkeit von “Dispergiermitteleffekte” aufwiesen.
Abgesehen von diesen Einflüssen auf den Emissionsverlauf wurde auch eine Be- trachtung der Breite des spannungsgesteuerten Emissionsabfall durchgeführt. Da- raus konnte ermittelt werden, dass diese Ausdehnung eine Konsequenz aus der PL- Löschungseffizienz der Ladungsträger ist und, dass bei einer Verteilung von 0.32 Löschzentren pro Nanometer eine vollständige Abnahme der Photolumineszenzinten- sität induziert wird.
Darüber hinaus wurde im Rahmen dieser Arbeit das redoxchemische Verhalten in- dividueller (6,5)-SWNTs in Wechselwirkung mit Ferrocenmolekülen untersucht. Die erhaltenen Ergebnisse ließen annehmen, dass die sich ausbildende Verbindung nicht-kovalenter Natur ist. Zwei verschiedene Gründe führten zu dieser Erkennt- nis: einerseits ließen sich die Ferrocenmoleküle von der CNT-Oberfläche durch ein Durchspülen des mikrofluidischen Kanals mit einer reinen DMF-Lösung entfernen und andererseits war keine dauerhafte Emissionsminderung durch die Ausbildung kovalenter Bindungen zu beobachten. Aus der potenzialabhängigen PL wurde zudem ein Elektronentransfer der Ferrocenmoleküle in die optisch generierten Löcher des CNT-Valenzbandes festgestellt und über eine anregungsintensitätsabhängige Messung die Zunahme dieses Ladungstransfers bei steigendem Photonenfluss nachgewiesen.
Hinsichtlich der Anwendung von Kohlenstoffnanoröhren zur Elektrolyse bzw. Photo- lyse von Wasser wurde auch die Redoxchemie von (6,5)-SWNTs in diesem Solvens untersucht. Bezüglich der Emissionsintensität konnte gezeigt werden, dass diese im Vergleich zu organischen Lösungsmitteln reduziert vorliegt. Außerdem wurde eine irreversible Reaktion nach anodischer Polarisation über eine dauerhafte Löschung der PL beobachtet. Die Bestimmung der hierfür notwendigen Reaktionsumstände erbrachte, dass Wasser, Exzitonen (erzeugt durch optische Anregung) und spannungs- induzierte Löcher im Valenzband zur Bildung einer [SWNT(Q)]-Spezies führen, welche die irreversible Minderung der CNT-Emission verursacht. Darüber hinaus konnte die Reaktionsgeschwindigkeit über eine Kinetik pseudo-nullter-Ordnung be- schrieben werden, unter der Voraussetzung, dass die soeben genannten Parameter konstant verblieben. Desweiteren zeigte sich in einer ferrocenhaltigen Lösung, dass der Löscheffekt der [SWNT(Q)]-Spezies im anodischen Potenzialbereich teilweise reduziert wird. Es wurde angenommen, dass diese Beobachtung auf eine Oxidation der Löschzentren durch die Fc+-Kationen gründet.
Mit Hilfe der CVD-Apparatur gelang es Kohlenstoffnanoröhren zu synthetisieren, wobei Ethanol als Kohlenstoffquelle und ein Eisen-Kobalt-Zeolith-Gemenge als Ka- talysator diente. Die Analyse der verschiedenen Prozessparameter zeigte, dass bei T = 750 °C das beste Verteilungsverhältnis zwischen den gewünschten (6,5)-SWNTs und anderen CNT-Chiralitäten bzw. dem amorphen Kohlenstoff vorliegt. Hierfür war, dass bei T < 750 °C die Verbrennung unerwünschter amorpher Kohlenstoffreste nur geringfügig stattfindet, und dass bei T > 750 °C die Bildung anderer Chiralitäten mit größerem Durchmesser als die (6,5)-SWNT bevorzugt wurde. Die Variation der Durchflussrate hingegen wirkte sich nur in einer absoluten Zunahme aller Chirali- täten aus. Die Steigerung des (6,5)-SWNT-Anteils für höhere Durchflüsse gelang trotzdem durch die geschickte Auswahl geeigneter Druck- und Temperaturwerte. Die Experimente zur Untersuchung der Druckabhängigkeit wiesen auf eine Relation mit dem Gesetz von Le Chatelier hin, insofern als bei einer Druckverringerung eine Verschiebung der Ethanol-Crackreaktion auf Produktseite stattfand. In diesem Zusam- menhang wurde angenommen, dass die damit verstärkt gebildeten Moleküle Ethan, Ethen und Methan den CNT-Anteil zwar erhöhen, jedoch auch eine Steigerung der amorphen Kohlenstoffkonzentration verursachen. Dementsprechend ergab ein Druck von p = 9 mbar das beste (6,5)-SWNT zu dem amorphen Kohlenstoffverhältnis.
Anhand der Arbeiten in dieser Dissertation sind neue Erkenntnisse zwischen der PL-Sensitivität von (6,5)-SWNTs und deren Ladungszustand erhalten worden. Insbe- sondere die genaue Bestimmung der Korrelation zwischen der Photolumineszenz und den induzierten Ladungsträgern ermöglicht einen gezielteren Einsatz von Kohlenstoff- nanoröhren – so zum Beispiel im Bereich der Sensorik. In diesem Zusammenhang zeigen auch die interpartikulären Analysen der Redoxpotenzialverteilung die genau- en Auswirkungen vom Lösungsmittel und der Defektdichte auf die elektronische Struktur der CNTs auf. Darüber hinaus kann aus der Ursachenbestimmung für die Varianz der literaturbekannten Reduktions- bzw. Oxidationspotenziale fortan die ge- eignete spektroskopische Methode zur Evaluierung der Position von Leitungs- und Valenzband in Kohlenstoffnanoröhren besser eingegrenzt werden. Die spektroelektro- chemischen Analysen von (6,5)-SWNTs im Lösungsmittel Wasser und speziell die Bestimmung der Kinetik für die auftretende Reaktion liefern einen tieferen Einblick in die Wechselwirkung (6,5)-SWNT-H2O. Diese Ergebnisse sind insbesondere bei der Verwendung von Kohlenstoffnanoröhren als Elektrodenmaterial für die photolytische bzw. elektrolytische Spaltung von Wasser in Wasserstoff und Sauerstoff von Bedeu- tung. Neben der Untersuchung der SWNT-Wasser Interaktion unter andoischer und optischer Anregung, die zu einer kovalenten Bindung führte, wurde mit Hilfe der (6,5)- SWNT-Ferrocen Wechselwirkung ein Beispiel für eine nichtkovalente Redoxreaktion dargestellt, womit ein Vergleich dieser beiden Spezies und ihrer unterschiedlichen Auswirkungen auf die elektronische Struktur aufgezeigt werden konnte.
In dieser Arbeit werden Pflanzen, Pflanzengewebe, Pflanzenzellen und Mikro-organismen spektroskopisch untersucht und ihre Inhaltsstoffe unter minimaler Probenpräparation im biologischen Gewebe direkt lokalisiert und identifiziert. Unter den verfügbaren Schwingungs-spektroskopischen Methoden ist die Mikro-Raman-Spektroskopie für diese Fragestellungen besonders gut geeignet, da Wasser Raman-Spektren nur wenig beeinflusst. Daher kann mit Raman-spektroskopischen Methoden auch in stark wasserhaltigem Gewebe gemessen werden. Weiterhin erhält man mit der Mikro-Raman-Spektroskopie eine gute räumliche Auflösung im sub-µm-Bereich, wodurch es möglich ist, heterogene Proben zu untersuchen. Darüber hinaus kann die Mikro-Raman-Spektroskopie mit anderen Methoden, wie z. B. der oberflächenverstärkten Raman-Spektroskopie (SERS), kombiniert werden. In pflanzlichen Zellen liegt eine Vielzahl von Substanzen in geringen Konzentrationen vor. Aufgrund der niedrigen Quantenausbeute des Raman-Effekts treten vor allem Substanzen, die eine Resonanz-Verstärkung erfahren, in den Spektren hervor. Diese Substanzen, wie z. B. b-Carotin, können deshalb in geringen Konzentrationen detektiert werden. Der Schwerpunkt dieser Arbeit liegt in der Untersuchung von Sekundär-Metaboliten wie Alkaloiden, Lipiden oder Terpenen, die in der Pflanze agglomerieren. Neben der Identifikation von Inhaltsstoffen, können die Raman-Spektren von Pflanzen für die chemotaxonomische Klassifizierung mit Hilfe der hierarchischen Clusteranalyse verwendet werden. Die Identifizierung von Mikroorganismen auch in sehr geringen Mengen (Monolage, einzelne Zellen) ist mit der Mikro-Raman-Spektroskopie nur unter bestimmten Voraussetzungen durchführbar. Für weitergehende Untersuchungen wird hier die SERS-Sonde oder ein TERS-Aufbau verwendet werden.
The experimental technique predominantly employed within the scope of this Thesis constitutes one subarea of femtochemistry: the time-resolved spectroscopy of photoin-
duced chemical reactions in the liquid phase by means of molecular signatures in the mid-infrared (MIR) spectral range. Probing transient vibrational states, i.e., dynamic
changes in the vibrational motion of specic molecular subunits or functional Groups allows for a distinct separation and assignment of measured signals to emerging molecular species. For this purpose, one key building block is indispensable, which most of the investigations carried out within the eld of femtochemistry have in common: a coherent light source delivering ultrashort laser pulses with a temporal duration that matches the femtosecond time scale on which molecular motions typically occur. This instrumentation enables the observation of photoinduced chemical reactions from the
starting point|the excitation event to the appearance of intermediates to the nal formation of stable photoproducts after several pico- or nanoseconds.
This work comprises the acquisition and presentation of time-resolved spectroscopic data related to promising molecular systems upon photoexcitation as well as the im-
plementation and testing of experimental optical techniques both for the presented experiments but as well for experiments conceivable in the future. In addition, linear spectroscopy measurements and quantum-chemical simulations on the emerging chemical species have been carried out. In so doing, the primary processes and subse-
quently emerging reaction products of two compounds on a timescale of several nanoseconds after photoexcitation have been elucidated in great detail. Both compounds, the
[Mn(CO)3(tpm)]+ (tpm = tris(2-pyrazolyl)methane) CO-releasing molecule (CORM) and the 5-diazo Meldrum's acid (DMA), are of academic interest but in addition belong
to molecular classes that might be utilized in the near future as dark-stable prodrugs under physiological conditions or that are already utilized in industrial chemistry procedures, respectively. The ndings of both studies gave rise to implement and examine two techniques for prospective transient absorption experiments, namely the shaping and characterization of ultraviolet (UV) laser pulses and the recording of two-photon excitation spectra. Beyond that, since each of the depicted experiments is based on the detection of weak transient absorption signals in the MIR spectral region, two dif-
ferent detection schemes, via chirped-pulse upconversion (CPU) on the one hand and via direct multichannel MCT detection on the other hand, have been juxtaposed at the
conclusion of this work. Since both techniques are suitable in femtosecond pump-probe measurements but thereby exhibit individual strengths and weaknesses, a comparative study provides clarication of the respective pros and cons. The first study introduced within this work investigates the complex photochemistry
of DMA, a photoactive compound used in lithography and industrial chemistry. By femtosecond MIR transient absorption spectroscopy covering several nanoseconds, the
light-induced dynamics and ultrafast formation of several photoproducts from the manifold of reaction pathways have been disclosed to form a coherent picture of the overall
reaction scheme. After UV excitation of DMA dissolved in methanol to the second excited state S2, 70% of excited molecules relax back to the S0 ground state. In compet-
ing processes, they can either undergo an intramolecular Wolff rearrangement to form ketene, which reacts with a solvent molecule to an enol intermediate and further to carboxylate ester, or they rst relax to the DMA S1 state, from where they can isomerize to a diazirine. The third competing reaction channel, having the lowest quantum efficiency with respect to the rst two channels, is the formation of a singlet carbene out of the S1 state. From there an ylide can arise or, via an intersystem crossing, the triplet form of the carbene follows. Whereas the primary reaction steps occur on a picosecond timescale, the subsequently arising intermediates and stable photoproducts are formed
within a few hundreds to thousands of picoseconds. For a reliable identication of the involved compounds, density functional theory calculations on the normal modes and
Fourier-transform infrared spectroscopy of the reactant and the photoproducts in the chemical equilibrium accompany the analysis of the transient spectra. Additional experiments in ethanol and isopropanol led to slight spectral shifts as well as elongated time
constants due to steric hindrance in transient spectra connected with the ester Formation channel, further substantiating the assignment of the occurring reaction pathways and photoproducts.
The study demonstrated that the combination of linear and time-resolved spectroscopic measurements in conjunction with quantum-chemical calculations constitutes a powerful tool to unravel even highly complex photoreactions exhibiting multiple consecutive intermediate states within parallel reaction pathways. Although some of the individual reaction steps, for example the ketene formation via Wolff rearrangement, have been observed on ultrashort time scales before, this work encompassed the Observation of the whole set of appearing photoproducts of DMA in different alcohol solutions within several nanoseconds. In this sense, the ultrafast photochemistry of DMA represents a prototype example for a multisequential reaction scheme, elucidated by the capabilities of femtosecond MIR spectroscopy.
With a modified instrumentation concerning amongst others the system delivering the fundamental laser pulses or the generation of the UV pump pulses, the next ob-
jective within this work was to elucidate the primary processes upon UV Irradiation of a manganese tricarbonyl CORM in aqueous environment. The time-resolved
experiment was performed with two different pump wavelengths and furthermore supported by linear spectroscopy methods and time-dependent density functional theory (TDDFT) calculations on the excited states as well as DFT calculations on the ground
states. The measurements revealed that irradiating the compound with UV excitation pulses primarily leads to ultrafast photolysis of one CO ligand. Geminate recombination may occur within one picosecond but it remains a minor process as the photolyzed CO
group is liberated and the unoccupied coordination site is predominantly filled by an incoming solvent molecule. There was no evidence for hot CO bands, i.e., the remaining CO ligands|in the dicarbonyl photoproduct as well as in the intact CORM are not vibrationally excited through the UV excitation of the CORM. According to this, the excess energy merges into low-frequency vibrational modes associated with the molecule as a whole. Since studies on a macroscopic scale at irradiation times of several minutes prove that UV irradiation eventually leads to the release of two or even all three CO
ligands, further loss of CO most likely necessitates manganese oxidation or another interaction with light. To clarify the latter, a consecutive UV pulse was employed in order to excite the photoproducts subsequent to the initial pump interaction. However, the data obtained was not instructive enough to denitely exclude the manganese oxidation being responsible for the loss of further CO groups. Besides the exchange of a CO Group by a solvent molecule or the geminate recombination, the employment of two different excitation wavelengths in combination with ndings derived from the TDDFT calculations suggested another reaction process, namely the possibility that the excitation does not lead to any bond cleavage at all. As the CORM under investigation is tissue-selective and cytotoxic against cancer cells, knowledge of these rst photoinduced reaction steps is essential for a full understanding of its biological activity. Inspired by these two studies, experimental techniques for prospective transient absorption measurements have been implemented and tested within preparative measure-
ments. First, in the course of a UV-pump-MIR-probe experiment with specically tailored excitation pulses, one could pursue the aim of coherently controlling the outcome of a photoreaction in the liquid phase. Out of the rich photochemistry of DMA the vibrational signature of a particular molecular species might thereby serve as a feedback signal, which is a central part of a learning loop that adaptively determines the pulse shape that steers the quantum mechanical system upon photoexcitation into a desired direction. This motivated the installation and testing of devices by means of which the shaping and characterization of ultrashort laser pulses in the UV could be performed. Second, motivated by the biological applications of CORMs, one can imagine a scenario where a certain amount of CORMs is deposited inside cancerous tissue. Since the activation of CO loss by means of UV pulses is not possible due to the absorption characteristics of biological tissue, the simultaneous excitation via two photons from the visible spectral regime seems appealing. However, success or failure of such an application depends on whether the deposited compound efficiently absorbs two photons simultaneously, i.e., whether the two-photon absorption cross section is large enough. Therefore, a setup to record two-photon excitation spectra under full consideration of
the crucial laser pulse parameters like the pulse duration, energy and central wavelength was arranged and tested. The rst results were obtained with a commercially available reference system (Mn2CO10) but the setup as well as the described measurement and
data analysis procedure can easily be applied to record the two-photon absorption cross section of more promising molecular systems. Third, as the detection of probe pulses
in the MIR spectral region is part of each time-resolved measurement throughout this thesis, a comparison between the newly established technique of CPU and direct multi-
channel MCT detection is presented by means of pump{probe experiments on Mn2CO10 and Co4CO12 with a 1 kHz shot-to-shot data acquisition. It was shown that the CPU detection technique scores with its high spectral resolution and coverage of the easy-to-handle and more cost-effective CCD detectors. On the other hand, in the course of the additional nonlinear upconversion process intensity fluctuations of the chirped fundamental pulses are transferred to the probe spectrum in the visible regime. This entails a lower signal-to-noise ratio than the direct MCT detection, which can be compensated by an additional normalization procedure applied to the CPU probe pulses. As a consequence, the CPU detection scheme offers more flexibility for future investigations
employing MIR probe pulses. This is of great importance for many applications within the presented eld of femtochemistry as a huge variety of time-resolved investigations on a multitude of systems in the liquid phase is based on the detection of weak transient
absorption signals in the MIR spectral region.
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.
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.
Plasmonic modes supported by noble-metal nanostructures offer strong subwavelength electric-field confinement and promise the realization of nanometer-scale integrated optical circuits with well-defined functionality. In order to measure the spectral and spatial response functions of such plasmonic elements, we combine a confocal microscope setup with spectral interferometry detection. The setup, data acquisition, and data evaluation are discussed in detail by means of exemplary experiments involving propagating plasmons transmitted through silver nanowires. By considering and experimentally calibrating any setup-inherent signal delay with an accuracy of 1 fs, we are able to extract correct timing information of propagating plasmons. The method can be applied, e.g., to determine the dispersion and group velocity of propagating plasmons in nanostructures, and can be extended towards the investigation of nonlinear phenomena.
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.
Besides their widespread use in coordination chemistry, 2,2’‐bipyridines are known for their ability to undergo cis–trans conformational changes in response to metal ions and acids, which has been primarily investigated at the molecular level. However, the exploitation of such conformational switching in self‐assembly has remained unexplored. In this work, the use of 2,2’‐bipyridines as acid‐responsive conformational switches to tune supramolecular polymerization processes has been demonstrated. To achieve this goal, we have designed a bipyridine‐based linear bolaamphiphile, 1, that forms ordered supramolecular polymers in aqueous media through cooperative aromatic and hydrophobic interactions. Interestingly, addition of acid (TFA) induces the monoprotonation of the 2,2’‐bipyridine moiety, leading to a switch in the molecular conformation from a linear (trans) to a V‐shaped (cis) state. This increase in molecular distortion along with electrostatic repulsions of the positively charged bipyridine‐H\(^{+}\) units attenuate the aggregation tendency and induce a transformation from long fibers to shorter thinner fibers. Our findings may contribute to opening up new directions in molecular switches and stimuli‐responsive supramolecular materials.
Bei der Einelektronenreduktion eines durch eine cyclisches (Alkyl)(amino)carben (CAAC) stabilisierten Arylborylen-Carbonylkomplexes erfolgt die Bildung eines dimeren Borylketyl-Radikalanions, bedingt durch eine intramolekulare Arylmigration zum CO Kohlenstoffatom. Computergestützte Analyse liefert Hinweise auf eine radikalanionische [(CAAC)B(CO)Ar]\(^{.-}\) Zwischenstufe. Weiterführende Reduktion des entstandenen Komplexes liefert ein hoch nukleophiles (Boranyliden)methanolat.
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.
The present work presents investigations on energy and charge transport properties in organic crystals. Chapter 4 treats exciton transport in anthracene, which is an example for weakly coupled π-systems. The electronic coupling parameter is evaluated by the monomer transition density approach. With these and the reorganization energy hopping rates are calculated in the framework of the Marcus theory. Together with the knowledge of the crystal structure, these allow us to calculate the experimental accessible exciton diffusion lengths, whose isotropic part fits nicely within the scattering of experimental values found in the literature. Furthermore, the anisotropy of the exciton diffusion lengths is reproduced qualitatively and quantitatively correct. This chapter also contains studies about electron and hole transport in both polymorphs (α and β) of perylene. Reorganization energies as well as diffusion coefficients for both crystal structures and types of charge transport were calculated. The best transport is hole transport in β-perylene, but it is strongly isotropic. The preferred transport direction is along the b-axis of the unit cell with couplings of greater than 100 meV. However, there is no transport along the c-axis. The diffusion constant in b-direction is bigger by two orders of magnitude than in c-direction (62.7•10-6 m2/s vs. 0.4•10-6 m2/s). Charge transport is calculated to be strongly anisotropic for holes as well as electrons in both modifications. To verify these results experimental electron mobilities have been compared to the simulations. Good agreement was found with errors of less than 27%. As it was shown above, the calculation and measurement of transport properties between weakly coupled systems is possible. However, it is difficult to exactly determine the quality of the electronic coupling. For this reason a collaboration about strongly interacting π-systems was started between us and the research group of Prof. Ingo Fischer. There, [2.2]paracyclophanes and its derivates were investigated to show how hydroxyl substitution influences absorption properties. Overall, a combination of SCS-MP2 and SCS-CC2 performs best to address the description of geometric and electronic structures for both ground and excited states of these model systems as well as their parent compounds benzene and phenol. Only [2.2]paracyclophane shows a double minimum potential regarding a twist and shift motion between the benzene/phenol subunits towards each other. All other systems are less flexible due to their substitution pattern. Almost all [2.2]paracyclophanes display minor changes in their geometric structure upon excitation to the S1 state: The inter-ring distance shortens, but qualitatively they keep their shift and twist characteristics, although the extent of these deformations diminishes. The exception is p-DHPC, which turns from a shifted ground state structure into a twisted excited state structure. Consequently, the intensity of the 0-0 transition cannot be observed experimentally due to small Franck-Condon factors and impurities of o-DHPC. In the present thesis, the structures and their changes due to excitation are explained by electrostatic potentials as well as antibonding (bonding) HOMO (LUMO) orbitals. Adiabatic excitation energies have been corrected by ZPEs and result in accuracies with errors smaller than 0.1 eV. Note that corrections on the B3LYP level worsen the results and one has to apply SCS-CC2 to achieve this accuracy. These calculations allow an interpretation of the experimental [1+1]REMPI spectra. Band progressions of the twist, shift and breathing of the [2.2]paracyclophane skeleton vibrations have been identified and show good agreement to the experiment. This work shows that the substitution pattern in [2.2]paracyclophanes can have a significant impact on spectroscopic properties. Because these properties are directly linked to the transport properties of these materials, the hereby gained insight can be used to design materials with customized transport properties. It was shown that the SCS-CC2 method is very appropriate to predict the interaction between the π-systems
In der vorliegenden Arbeit wurden zwei spektroskopische Methoden (Raman- und Circulardichroismus-Spektroskopie) und die Kernspinresonanz zur Untersuchung der Sekundärstruktur von synthetischen Polypeptiden eingesetzt. Dabei wurden die Struktur-Funktions-Beziehungen der dritten extrazellulären Schleife des Gonadotropin-freisetzenden Rezeptors (GnRH-R) untersucht. Die spektroskopischen Ergebnisse belegten, dass die zuvor getroffene Aussage über eine vorhandene helikale Struktur revidiert werden musste. Die Strukturanalysen mit Hilfe der CD-, Raman- und 2D NMR-Experimente an zwei Serien von Polypeptiden lieferten Aussagen über die Sekundärstruktur. Insbesondere die Raman-Untersuchungen in Verbindung mit einer statistischen Datenanalyse lieferten detaillierte Information über subtile Konformationsänderungen, die einerseits durch die Addition und andererseits durch die Substitution einzelner Aminosäuren in den synthetischen Polypeptiden ausgelöst wurden. Anhand der ausgewählten Raman-Linien konnte nachgewiesen werden, dass sowohl die Änderungen der Polypeptidkettenlänge als auch die Änderung der Polypeptidsequenzen mit den beobachteten Intensitäten der Raman-Linien korreliert sind.
Infrared (IR) and Raman spectroscopy are among the most widely used techniques in the physical and natural sciences today. Vibrational spectroscopy, including IR and Raman spectroscopy, has both a long and interesting history and an illustrious record of contributions to science. Spectroscopy in the pharmaceutical industry is dominated by techniques such as nuclear magnetic resonance (NMR) and mass spectrometry (MS) for the elucidation of chemical structures. Despite this, the versatility of infrared spectroscopy ensures it still remains a key technique in quality control laboratories, and in applications where solid form characterization or minimal sample preparation is a necessity. Raman spectroscopy has many uses in the pharmaceutical and chemical industry, but its strengths is in solid form analysis. It is regularly used to identify compounds, and results are used in the release of pharmaceutical and chemical products. This work consists of 8 chapters, which cover the vibrational spectroscopy beginning with the theory and instrumentation, continuing with the experimental setup and probes description, and completing with results and discussions of the experiments. The first chapter of this work introduces Raman spectroscopy as a dominant technique used in pharmaceutical and chemical industry. The theoretical background regarding vibrational spectroscopy (IR and Raman) is accounted for in the second chapter of this work, while the samples presentation, the experimental procedures, and the description of the apparatus together with the computational details are briefly specified in the third chapter. The fourth chapter investigates the concentration dependent wavenumber shifts and linewidth changes of tetrahydrofuran in a binary system. Many of the applications in food science rely heavily on Raman spectroscopy, often preceding the biomedical applications. The characterization and identification of food additives using Raman, surface-enhanced Raman spectroscopy, and theoretical calculations is in detail depicted in the fifth chapter, whereas in the sixth and seventh chapters the monitoring of several medicines and various lanthanide complexes with anticancer properties, respectively, employing IR and Raman techniques are treated. These last two chapters address applications of vibrational spectroscopy to pharmaceutical products, and include the use of vibrational spectroscopy in combinatorial chemistry and density functional theory, a modality increasingly used by the pharmaceutical industry for the discovery if new pharmacologically active substances.
In the current work, several well-known pharmaceuticals (1,4-dihydrazinophthalazine sulfate, caffeine, and papaverine hydrochloride) and new organometallic compounds (nickel(II) cupferronato complexes NiL2An, L = PhN2O2-, n = 1, A = o-phenanthroline (1), o,o’-bipyridine (2) and n = 2, A = H2O (3), o-NH2Py (4), o-C6H4(NH2)2 (5); silylene-bridged dinuclear iron complexes [Cp(OC)2Fe]2SiX2 (X = H (6), F (7), Cl (8), Br (9), I (10)); 3-silaoxetane 3,3-dimethyl-2,2,4,4-tetraphenyl-1-oxa-3-silacyclobutane (11) and 3-silathietane 3,3-dimethyl-2,2,4,4-tetraphenyl-1-sila-3-thiacyclobutane (12) compounds), which have successfully been characterized by using vibrational spectroscopy in conjunction with accurate density functional theory (DFT) calculations, are presented. The DFT computed molecular geometries of the species of interest reproduced the crystal structure data very well and in conjunction with IR and Raman measurements helped us to clarify the structures of the compounds, for which no experimental data were available; and this, especially for the new organometallic compounds, where the X-Ray analysis was limited by the non-availability of single crystals (3, 5, 10). Furthermore, a natural population analysis (NPA) and natural bond orbital (NBO) calculations together with a detailed analysis of the IR and Raman experimental as well as calculated spectra of the new organometallic compounds, allowed us to study some special bonding situations (1-12) or to monitor the structural changes observed with the change in temperature during the Raman experiments (11, 12). By combining these two methods (DFT and vibrational spectroscopy), the auspicious results obtained on the organometallic compounds 6-12 and overall in literature, made us confident of the power of theoretical calculations in aiding the interpretation of rich SERS spectra by solving some interesting issues. Consequently, the Raman and SERS spectra of well-known pharmaceuticals (1,4-dihydrazinophthalazine sulfate, caffeine, and papaverine hydrochloride) or new potentially biological active organometallic complexes (1-5), that were synthetized by our coworkers, were discussed with the assistance of the accurate results obtained from DFT calculations (structural parameters, harmonic vibrational wavenumbers, Raman scattering activities), and many previous incomplete assignments have been analyzed and improved. This allowed us to establish the vibrational behavior of these biological compounds near a biological artificial model at different pH values or concentrations (Ag substrate), taking into account that information about the species present under particular conditions could be of great importance for the interpretation of biochemical processes. The total electron density of molecules and the partial charges situated on selected atoms, which were determined theoretically by NPA, allowed us to establish the probability of different atoms acting as an adsorptive site for the metal surface. Moreover, a closer examination of the calculated orbitals of molecules brought further arguments on the presence or absence of the photoproducts at the Ag surface during the irradiation (1,4-dihydrazinophthalazine sulfate). Overall, the results provide a benchmark illustration of the virtues of DFT in aiding the interpretation of rich vibrational spectra attainable for larger polyatomic adsorbates by using SERS, as well as in furnishing detailed insight into the relation between the vibrational properties and the nature of the Ag substrate-adsorbate bonding. Therefore, we strongly believe that theoretical calculations will become a matter of rapidly growing scientific and practical interest in SERS.