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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.
Diese Arbeit befasst sich mit den spektralen Signaturen molekularer Aggregate sowie mit ihrer Wellenpakets- und Populationsdynamik in angeregten Zuständen unter dem Einfluss externer Störungen und photoinduzierter Asymmetrie.
Hierzu werden quantendynamische numerische Berechnungen mit der Multi-Configuration Time-Dependent Hartree-Methode
durchgeführt, um die angesprochenen Prozesse zu charakterisieren.
Durch die Konzentration auf Modellrechnungen sind die qualitativen Ergebnisse dieser Arbeit auf viele Systeme übertragbar.
Zunächst widmet sich die Arbeit den linearen UV/Vis-Absorptions- und Emissionsspektren von Aggregaten.
Hier zeigt sich, dass die Anzahl der Größen, die ein Absorptionsspektrum bestimmen -- etwa die Anzahl der Chromophore, ihre geometrischen Anordnung und die elektronische Kopplung zwischen ihnen -- zu groß ist, um ihre numerischen Werte eindeutig aus den Spektren bestimmen zu können.
Insbesondere können sich die Auswirkungen der Aggregatgröße und der Kopplungsstärke gegenseitig so beeinflussen, dass die Form der Absorptionsbande bei sehr unterschiedlichen Systemen nahezu identisch ist. Daraus ergeben sich Schwierigkeiten bei der Interpretation experimenteller Spektren, insbesondere von selbst-aggregierten Oligomeren, deren Größe unbekannt ist.
Es ist daher notwendig, entweder die elektronische Kopplung oder die Anzahl der Monomere in einem Aggregat
durch andere experimentelle Methoden unabhängig zu bestimmen. Ist die Aggregatgröße jedoch bekannt,
können die Absorptionsspektren sehr wohl zur Bestimmung anderer Eigenschaften des Systems herangezogen werden.
Dies wird durch die Untersuchung der Spektren kovalent gebundener zyklischer Aggregate aus drei und vier cis-Indolenin-Squarain-Molekülen als Beispiel für Systeme mit bekannter Größe dargestellt.
Das zweite Hauptthema der Arbeit ist die Populationsdynamik in angeregten Zuständen molekularer Aggregate.
Dazu werden numerische Rechnungen an Dimeren, Pentameren und Nonameren durchgeführt. Eine Asymmetrie, sei es im System selbst oder am Wellenpaket, das durch die Anregung entsteht, kann dazu führen, dass ein einzelnes Monomer dauerhaft bevorzugt populiert ist. Wenn durch eine externe Störung die Energie des angeregten Zustands bestimmter Monomere für eine gewisse Zeit erhöht ist,
kommt es zu einer Lokalisation der Population in diesem energetisch höheren Zustand.
In einem System mit weiteren internen Freiheitsgraden wird die Population auf benachbarte Monomere übertragen,
wenn der Betrag der Energieverschiebung des gestörten Zustands mit dem Abstand der Schwingungsniveaus zusammenfällt.
Der anfängliche Lokalisierungseffekt ist darüber hinaus zustandsspezifisch:
Er wird durch die Überlappintegrale der Schwingungskomponenten der Wellenfunktion in den diabatischen angeregten elektronischen Zuständen bestimmt.
Durch die Kombination von zwei Laserpulsen kann auch ein Wellenpaket in den angeregten Zuständen erzeugt werden,
dessen Symmetrieachsen nicht mit denen der Potentialflächen des Systems zusammenfallen.
Dadurch, dass hier die Asymmetrie schon im Wellenpaket vorliegt, kann es auch ohne äußere Störung zu einer Lokalisation der Population auf einem Monomer kommen.
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.
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.
Derivate von Vinylsulfonen (VS), die zur Klasse der Michael-Akzeptoren gehören, haben sich in den letzten Jahren als potente irreversible Inhibitoren von Cystein-Proteasen etabliert. Durch einen nucleophilen Angriff des Cys-Restes im aktiven Zentrum der Protease auf das beta-Kohlenstoffatom der C-C-Doppelbindung wird die Protease irreversibel alkyliert. Ziel dieser Arbeit war es, einfache theoretische und experimentelle Methoden zu entwickeln, um erste Schlussfolgerungen hinsichtlich der Reaktivität unterschiedlicher Vinylsulfone ziehen zu können, die zur vollständigen Aufklärung der Struktur-Wirkungsbeziehung von Vinylsulfonen mit diversen Cystein-Proteasen dienen. Im ersten Teil der Arbeit wurden quantenmechanische Rechnungen an kleinen Vinylsulfon-Bausteinen angestellt, um den Einfluss unterschiedlicher Substitutionsmuster an der Sulfoneinheit auf die Reaktionskinetik von Vinylsulfonen zu untersuchen. Anhand der jeweiligen Potentialflächen ließen sich die charakteristischen Punkte der Reaktion, wie der Reaktionskomplex, der Übergangszustand (transition state, TS) sowie das Produkt mitsamt ihren Energien und Geometrien bestimmen. Die Höhe der Energiebarriere, die zum Erreichen des TS überwunden werden muss, die sogenannte Aktiverungsenergie, hängt über die Arrhenius-Gleichung mit den kinetischen Parametern der Reaktion zusammen. Es lässt sich also durch die Kenntnis der Aktivierungsenergien die Reaktivitätsreihenfolge unterschiedlich substituierter Vinylsulfone VS vorhersagen. Im zweiten Teil dieser Arbeit wurden Vinylsulfonbausteine synthetisiert und an separat hergestellte Peptide gekuppelt, sodass potentielle Inhibitoren erhalten wurden. So konnten u.a. die peptidischen Inhibitoren Mu-D-Phe-L-HomoPhe-VS-Me und MP-D-Phe-L-HomoPhe-VS-Me hergestellt werden. Ein zweites Syntheseprojekt beschäftigte sich mit der Kupplung von Peptiden an neue Derivate der trans-Aziridin-2,3-dicarbonsäure. Die synthetisierten Inhibitoren waren Z-Phe-Ala-Azi, Boc-Leu-Pro-Azi und Z-Pro-Leu-Azi. Hierfür wurden die Peptide des Vinylsulfonsprojekts in umgekehrter Aminosäure-Reihenfolge synthetisiert, um sie an die Aziridinbausteine kuppeln zu können. Der dritte Teil der Doktorarbeit befasste sich mit der experimentellen Untersuchung der synthetisierten Vinylsulfonbausteine sowie den erhaltenen peptidischen VS- und Aziridin-basierten Inhibitoren. Es wurden einerseits Enzym-Assays durchgeführt, um die prozentuale Hemmung verschiedener Cystein-Proteasen durch die synthetisierten Moleküle zu messen. Keine der Verbindungen wies jedoch eine signifikannte Hemmung der Proteasen Rhodesain, Falcipain 2 und Cathepsin B auf. Andererseits wurden Modellsysteme entwickelt, um die Kinetik der Reaktionen der Vinylsulfon- und Aziridinbausteine mit einem geeigneten Thiol als Enzym-Imitat zu verfolgen. Ein zielführendes Modell konnte mit Phenylethanthiol in deuteriertem Methanol realisiert werden. Durch Zusatz von NaOH, KOH oder KOtBu konnte zusätzlich die Reaktion mit dem Thiolat untersucht werden. Die Reaktionen wurden sowohl mit IR- als auch NMR-Spektroskopie verfolgt und es wurden die Geschwindigkeitskonstanten 2. Ordnung bestimmt. Auf den ersten Blick konnte mit dem theoretischen Modell der experimentell gefundene Trend nicht vorhergesagt werden. Die Reihenfolge der Sulfonderivate aber, die an der Sulfongruppe ein weiteres Heteroatom tragen, Sulfonester und Sulfonamid, wurde richtig abgeschätzt. Der Unterschied in der Aktivierungsenergie zwischen den Sulfonestern beläuft sich auf 0.7 kcal pro mol. Über die Arrheniusgleichung, ergibt sich bei Annahme desselben Arrhenius-Faktors bei einer Temperatur von 25°C, dass OPhVS um einen Faktor 3 schneller als OMeVS reagieren sollte. Tatsächlich wurde im Experiment ein Faktor von 2.6 gefunden. Aufgrund der unterschiedlichen Substituenten am Stickstoffatom, ist das Amid nicht vollständig mit seinem H-substituierten theoretischen Pendant vergleichbar. Dass das Sulfonamid langsamer als die Sulfonester reagieren, wurde vom theoretischen Modell ebenfalls richtig vorhergesagt.
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.
Schwingungsspektroskopie ist eine vielseitige spektroskopische Methode, mit der Molekülstrukturen und inter-/intramolekulare Wechselwirkungen untersucht werden können. Sie ist deshalb ein hervorragendes Mittel für die Identifikation von Molekülen. Die vorliegende Arbeit umfasst drei Projekte, in denen Schwingungsspektroskopie angewandt wurde, um reaktive Moleküle und ihre Hochtemperatur-Reaktionsprodukte zu untersuchen:
1. Die Aufklärung der Entstehungsmechanismen von polycyclischen aromatischen Kohlenwasserstoffen (PAKs) in Verbrennungsprozessen ist eines der Hauptanliegen der Verbrennungschemie.
In der vorliegenden Arbeit wurde IR/UV-Ion-Dip-Spektroskopie in Verbindung mit DFT-Frequenzrechnungen und FTIR-Messungen angewandt, um Produkte von Radikal-Radikal-Reaktionen in einem Mikroreaktor bei hohen Temperaturen zu identifizieren. Als IR-Laserquelle für die IR/UV-Ion-Dip-Experimente diente der Freie-Elektronen-Laser FELIX (Free-Electron Laser for Infrared eXperiments) in Nijmegen (Niederlande).
In einem Teilprojekt wurde der A 1A´ (S1) <- X 1A´ (S0) Übergang in 1-(Phenylethinyl)naphthalin (1-PEN), einem mutmaßlich verbrennungsrelevanten Molekül, mit [1+1]-REMPI-Spektroskopie untersucht.
2. Die Identifikation von gasförmigen Reaktionsprodukten bei der thermischen Analyse (EGA: Emissionsgasanalyse) kann als komplementäre Methode zur DTA/TG zusätzliche Informationen für die Aufklärung von Reaktionsmechanismen liefern.
Der Aufbau eines elementaren EGA/FTIR-Experiments, basierend auf einer heizbaren IR-Gaszelle, ermöglichte in der vorliegenden Arbeit die Durchführung dynamischer IR-Messungen, mit denen thermische Umsetzungen von Übergangsmetall-Precursorkomplexen zu Koordinationspolymeren untersucht wurden.
3. Die Synthese des ersten bei Raumtemperatur stabilen Diborins, einer Verbindung mit einer Bor-Bor-Dreifachbindung, stellte einen Meilenstein in der elementorganischen Chemie dar. Dies implizierte eine umfassende Untersuchung der Eigenschaften der BB-Bindung und hatte die Synthese einer Reihe ähnlicher Bor-Bor-Mehrfachbindungssysteme mit variierenden Bindungseigenschaften zur Folge.
In der vorliegenden Arbeit wurde Raman-Spektroskopie in Verbindung mit DFT-Frequenzrechnungen angewandt, um für diese Bor-Bor-Systeme die strukturellen/elektronischen Eigenschaften der zentralen CBBC-Einheit zu untersuchen.
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.
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.
Synthese und Charakterisierung von II-VI-Halbleiter-Nanopartikeln in unterschiedlicher Umgebung
(2007)
Gegenstand dieser Arbeit ist die Synthese und Charakterisierung von II-VI-Halbleiter-Nanopartikeln (NP) in unterschiedlicher Umgebung. Aufgrund des großen Oberfläche-zu-Volumen-Verhältnisses werden Partikeleigenschaften stark durch ihre Oberfläche und die Wechselwirkung mit der Umgebung beeinflusst. Zuerst wurden strukturierte CdSe und CdSe/ZnS-Kern-Schale Nanopartikel durch eine organometallische Synthese in koordinierenden Lösungsmitteln hergestellt. Die optischen und elektronischen Eigenschaften wurden mittels Absorptions-(UV/VIS)-, Fluoreszenz- und konfokaler Fluoreszenz-Korrelations-Spektroskopie (FCS) untersucht. Die Ermittlung der Kristallstruktur erfolgte durch hochauflösende Transmissionselektronenmikroskopie (HRTEM) und Röntgenpulverdiffraktometrie (XRD). Die experimentellen XRD Resultate wurden durch Simulationen mittels der Debye-Formel sowie Berechnung einer Paarverteilungsfunktion (PDF) für die verschiedenen Nanopartikel-Modelle ausgewertet. Somit konnten die Partikelgröße, -form und die Kristallstruktur ermittelt werden. Ramanspektroskopische Untersuchungen ergaben Informationen über die Zusammensetzung des anorganischen Partikelkerns sowie seiner stabilisierenden Ligandenhülle. Aufbauend auf diesen Ergebnissen aus unterschiedlichen spektroskopischen und mikroskopischen Methoden konnte ein Struktur-Modell für die Kern-Schale Nanopartikel entwickelt werden. Dabei ist ein prolater wurtzitischer CdSe-Kern mit einer segmentartigen, lückenhaften ZnS-Schale beschichtet, die eine Zinkblende-Struktur aufweist. Zur Untersuchung der Umgebungseffekte wurden die CdSe- und CdSe/ZnS-Halbleiter-NP mit hydrophilen Liganden funktionalisiert, reversibel mit einer Polymerhülle beschichtet sowie kontrolliert in Silica-Kolloide eingebettet (Multikernpartikel). Somit konnten die Nanopartikel in unterschiedlich polaren und apolaren Lösungsmitteln stabilisiert und charakterisiert werden. Im Hinblick auf die Anwendungen von Halbleiter-NP als Marker in den Lebenswissenschaften wurde die Biokompatibilität und die lichtinduzierte Fluoreszenzverstärkung von Polymer-beschichteten II-VI-Halbleiter-NP und CdSe/ZnS-dotierten Silica-Kolloiden in unterschiedlichen Umgebungen untersucht. Mit Hilfe der erhaltenen Resultate ist ein neues qualitatives Modell für die lichtinduzierten Aktivierungs- und Desaktivierungsprozesse in Multikernpartikeln entwickelt worden. Ein weiterer Aspekt dieser Arbeit war die Untersuchung der lokalen elektronischen Struktur von II-VI-Halbleiter-NP in unterschiedlichen Umgebungen durch elementspezifische Anregung mit weicher Röntgenstrahlung. Dazu wurde ein Verfahren weiterentwickelt, das es erlaubt, einzelne gespeicherte feste und flüssige Nanopartikel substratfrei mit Hilfe von Synchrotronstrahlung zu analysieren. Darüber hinaus wurde die Röntgenabsorptionsfeinstruktur von deponierten CdSe/ZnS-dotierten Silica-Kolloiden durch die Messung der röntgenangeregten optischen Fluoreszenz (XEOL) bzw. durch die Bestimmung der totalen Elektronenausbeute (TEY) untersucht.
The absence of fluorine from most biomolecules renders it an excellent probe for NMR spectroscopy to monitor inhibitor–protein interactions. However, predicting the binding mode of a fluorinated ligand from a chemical shift (or vice versa) has been challenging due to the high electron density of the fluorine atom. Nonetheless, reliable \(^{19}\)F chemical‐shift predictions to deduce ligand‐binding modes hold great potential for in silico drug design. Herein, we present a systematic QM/MM study to predict the \(^{19}\)F NMR chemical shifts of a covalently bound fluorinated inhibitor to the essential oxidoreductase tryparedoxin (Tpx) from African trypanosomes, the causative agent of African sleeping sickness. We include many protein–inhibitor conformations as well as monomeric and dimeric inhibitor–protein complexes, thus rendering it the largest computational study on chemical shifts of \(^{19}\)F nuclei in a biological context to date. Our predicted shifts agree well with those obtained experimentally and pave the way for future work in this area.
In the experiments presented in this work, linear and non-linear femtosecond time-resolved spectrsocopy were applied to investigate the structure-function and functiondynamics relationship in biological and artificially designed systems. The experiments presented in this work utilize femtosecond time-resolved transient absorption and transient grating as well as picosecond time-resolved fluorescence spectroscopy to investigate the photophysics and photochemistry of biological photoreceptors and address the light-induced excited-state processes in a particular molecular device that serves as a - structurally - very simple light-harvesting antenna and potentially as a catalysis-switch for the production of hydrogen in solution. The combination of white-light probe transient absorption and coherent transient grating spectroscopies yields spectral information about the excited state absorption in concert with high quality, high signal-to-noise kinetic transients, which allow for precise fitting and therefore very accurate time-constants to be extracted from the data. The use of femtosecond time-resolved transient grating spectroscopy is relatively uncommon in addressing questions concerning the excited-state reaction pathways of complex (biological) systems, and therefore the experiments presented in this work constitute according to the literature the first studies applying this technique to a a metalloporphyrin and an artificial light-harvesting antenna.
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.
In the last two decades, coherent multidimensional femtosecond spectroscopy has become a powerful and versatile tool to investigate chemical dynamics of a broad variety of quantum systems. The combination of transient information, equivalent to pumpprobe spectroscopy, with information about coupling between energetic states and the system environment allows an extensive insight into atomic and molecular properties. Many experimental 2D setups employ the coherence-detected approach, where nonlinear system responses are emitted as coherent electric _elds which are detected after spatial separation from the excitation pulses. As an alternative to this experimentally demanding approach, population-based 2D spectroscopy has been established. Here, the coherent information is encoded in the phases of a collinear excitation-pulse train and extracted from incoherent signals like uorescence via phase cycling. In principle, the use of uorescence as observable can boost the sensitivity down to the single-molecule level. The aim of this work was the realization of a pulse-shaper assisted fully collinear uorescence-detected 2D setup and the conducting of proof-of-principle experiments in the liquid phase. This inherently phase-stable and compact setup has been presented in chapter 3, with the utilized pulse shaper granting amplitude and phase modulation on a shot-to-shot basis. Two di_erent types of white-light sources have been applied and evaluated with regard to their respective advantages for 2D uorescence spectroscopy. A variety of artifact sources that can occur with the present setup have been discussed, and correction schemes and instructions for avoiding these artifacts have been provided. In chapter 4, the setup has been demonstrated by employing a four-pulse sequence on cresyl violet in ethanol. A detailed data-acquisition and data-analysis procedure has been presented, where phase cycling is used for extraction of the nonlinear contributions. Depending on the phase-cycling scheme, it is possible to recover all nonlinear contributions in a single measurement. Well-known quantum-beating behavior of cresyl violet during the population time could be reproduced. Due to measuring in a rotating-frame environment and 1 kHz shot-to-shot pulse incrementation, it was possible to obtain a 2D spectrum for one population time in 6 s. Via error evaluation it has been shown that 10_ averaging (1 min) is su_cient to obtain a root-mean-square error of < 0:05 compared to 400_ averaging, proving that the utilized acquisition scheme is well suited. The realization of the _rst experimental uorescence-detected 2Q 2D experiment and the _rst experimental access to the theoretically predicted 1Q-2Q contribution
Ein System zur Aufnahme pikosekunden-zeitaufgelöster transienter Spektren wurde zu Beginn dieser Arbeit aufgebaut und charakterisiert. Zu diesem Zweck wurden Messungen von beta-Carotin durchgeführt und die Ergebnisse der Experimente mit den in der Literatur vorhandenen verglichen. Außerdem wurde der stark fluoreszierende Laserfarbstoff Rhodamin 6G vermessen, um abschätzen zu können, inwieweit Banden spontaner und stimulierter Emission Einfluss auf die transienten Absorptionsspektren besitzen. Es folgte die spektroskopische Untersuchung zweier Serien gemischtvalenter Verbindungen. Eine Serie besaß eine D-pi-A-, bzw. D-A-, die andere eine D-pi-D-, bzw. D-A-D-Grundstruktur. D und A stehen dabei für ein Elektronendonor-, bzw. Elektronenakzeptorsystem. Die Art der pi-Brücken und der Elektronendonoren wurde dabei variiert und die Verbindungen in verschieden polaren Lösungsmitteln vermessen. Im Mittelpunkt der Untersuchung beider Serien stand dabei die Geschwindigkeit des Elektronenrücktransfers nach einer durch einen Anrege-Puls induzierten Ladungstrennung in verschieden polaren Lösungsmitteln. Diese wurde zum einen beeinflusst durch die Art der pi-Brücke, zum anderen durch die unterschiedlichen Redoxpotentiale der Donorsubstituenten sowie durch das verwendete Lösungsmittel. Der Elektronenrücktransfer erfolgte bei allen der untersuchten Verbindungen und in jedem Lösungsmittel in der Marcus-invertierten Region. Die Transferrate war jedoch in polaren Lösungsmitteln deutlich größer als in apolaren. Außerdem wurden die Resonanz-Raman-Spektren einer der gemischtvalenten Verbindung aufgenommen, um mit dem Ladungstransfer einhergehende Molekülschwingungen identifizieren zu können. Eine Vorhersage der experimentellen ermittelten Elektronentransferraten nach den Methoden von Fermi und Jortner stieß an ihre Grenzen. Es bleibt zu klären, ob dies an einer ungenauen Beschreibung des Elektronentransfers durch die Formeln oder an einer noch zu ungenauen Bestimmung der in die Gleichungen eingehenden, auf unterschiedliche Methoden ermittelten Molekülparameter zurückzuführen ist. In einem weiteren Teil der Arbeit wurden zwei Vertreter der Medikamentenklasse der Fluorochinolone untersucht. Die Experimente mit Ciprofloxacin ergaben unerwartete Ergebnisse, die auf eine photochemische Reaktion schließen lassen, die in der Literatur weder vorgeschlagen noch veröffentlicht wurde. Die Untersuchung von Sparfloxacin ergab keine Ergebnisse, da die erhaltenen transienten Spektren keine Banden aufwiesen.
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.
We calculate two-dimensional (2D) spectra reflecting the time-dependent electronic predissociation of a diatomic molecule. The laser-excited electronic state is coupled non-adiabatically to a fragment channel, leading to the decay of the prepared quasi-bound states. This decay can be monitored by the three-pulse configuration employed in optical 2D spectroscopy. It is shown that in this way it is possible to state-selectively characterize the time-dependent population of resonance states with different lifetimes. A model of the NaI molecule serves as a numerical example.
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.