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Ziel der vorliegenden Arbeit war die Funktionalisierung von Titanoberflächen mit dem Glycosaminoglycan Heparin, um bei Kontakt des Werkstoffs mit Blut die Gerinnungskaskade nicht auszulösen und das Material für Stents (Gefäßstützen) im arteriellen System einsetzbar zu machen. Für die Modifizierungen wurden als Modell der oxidierten Titanoberfläche sowohl oxidierte cp-Titanplättchen als auch TiO2-Pulver verwendet. Heparin kam zum Einsatz, da es sowohl die Hämostase (Blutgerinnung) als auch die Proliferation (Überwucherung) mit glatten Muskelzellen unterdrückt und somit eine Restenose (Wiederverengung) des in die verengte Arterie eingebrachten Stents verhindert. Die kovalente Immobilisierung des Wirkstoffs erfolgte über bifunktionale Spacer (Haftvermittlermoleküle). Spacer waren 3-(Trimethoxysilyl)-propylamin (APMS), N-(2-Aminoethyl)-3-aminopropyltrimethoxysilan (Diamino-APMS) und N1-[3-(Trimethoxysilyl)-propyl]diethylen¬triamin (Triamino-APMS). Der qualitative und quantitative Nachweis der Funktionalisierung von TiO2 mit Haftvermittler bzw. Heparin erfolgte durch schwingungsspektroskopische Methoden, komplexometrische Farbreaktionen sowie der Bestimmung des Zetapotentials im Elektrolytkontakt. Durch die Anbindung von APMS, Di- und Triamino-APMS stieg das Zetapotential von ca. -26 mV auf positive Werte zwischen +41 und +45 mV. Ein Absinken des Zetapotentials belegte die erfolgreiche Anbindung von Heparin (Werte zwischen -39 und -37 mV) an die verschiedenen Haftvermittler, ebenso wie das Vorhandensein der symmetrischen SO3-Valenzschwingung bei 1040 cm-1. Der quantitative Nachweis der immobilisierten Aminogruppen über die Ninhydrinreaktion ergab für die TiO2-Pulver Werte zwischen 17-20 NH2/nm2, wobei die dichteste Funktionalisierung mit APMS und die niedrigste mit Triamino-APMS erzielt werden konnte. Alle Werte lagen im Bereich von Multilayern, da ein Monolayer aus ca. 2 3 NH2/nm2 besteht. Die immobilisierte Menge an Heparin war bei Verwendung von APMS am größten (53.3±3.6 ng/cm2) und bei Triamino-APMS am geringsten (32.1±5.7 ng/cm2). Die biologische Wirksamkeit des gebundenen Heparins wurde über das chromogene Substrat ChromozymTH® bestimmt und verblieb bei Anbindung an den Spacer mit der größten Moleküllänge (Triamino-APMS) mit ca. 70% am wirksamsten. Neben der kovalenten Anbindung des Wirkstoffs an Spacer zielte diese Arbeit auf die Entwicklung von organisch modifizierten, porösen SiO2-Wirkstoffdepots (P-MA-PS; Poly-methacryl¬oxy¬propylpolysilsesquioxane) für Heparin ab, die sowohl als Volumenwerkstoffe als auch zur Modifikation von Titan(dioxid)oberflächen anwendbar wären. Die Matrices wurden ausgehend von MAS (Methacryl¬oxypropyl¬trimethoxysilan) über den Sol-Gel Prozeß anorganisch und anschließend über photochemische Polymerisation zusätzlich organisch vernetzt. Die Quantifizierung des Polymerisationsgrads erfolgte über die Signalintensität der methacrylischen C=C-Doppelbindung bei 1635 cm-1 durch Integration einer Gauß-Funktion. Über den Polymerisationsgrad der organischen Matrix zwischen 0-71% konnte die Freisetzungskinetik von Heparin je nach therapeutischer Anforderung eingestellt werden. Es konnte gezeigt werden, daß hohe Wirkstoff-Beladungen und niedrige Polymerisationsgrade mit einer schnelleren Freisetzung des Heparins korrelierten, die aufgrund der Endlichkeit des Wirkstoffs im Depot einer Kinetik 1. Ordnung unterlag. Die kumulativ freigesetzten Wirkstoffmengen verhielten sich hierbei proportional zur Wurzel aus der Freisetzungszeit, was dem Higuchi-Modell zur Wirkstofffreisetzung aus porösen Matrices mit einem rein Diffusions-kontrollierten Mechanismus entsprach. Die durch Hydrolyse bedingte Degradation der anorganischen Matrix, die UV-VIS-spektroskopisch bei λ = 220 nm gemessen wurde, folgte einer Kinetik pseudo-0. Ordnung. Da das freigesetzte Heparin seine biologische Wirksamkeit beibehielt, sind P-MA-PS Matrices interessant für klinische Anwendungen, wie z.B. für die Beschichtung von Gefäßstützen, die im Blutkontakt stehen.
Within this work, an additive and a subtractive QM/MM interface were implemented into CAST. The interactions between QM and MM system are described via electrostatic embedding. Link atoms are used to saturate dangling bonds originating from the separation of QM and MM system. Available energy evaluation methods to be combined include force fields (OPLSAA and AMBER), semi-empirical programs (Mopac and DFTB+), and quantum-chemical methods (from Gaussian, Orca, and Psi4). Both the additive and the subtractive interface can deal with periodic boundary conditions. The subtractive scheme was extended to enable QM/QM, three-layer, and multi-center calculations. Another feature only available within the subtractive interface is the microiteration procedure for local optimizations.
The novel QM/MM methods were applied to the investigation of the reaction path for the complex formation between rhodesain and K11777. Benchmark calculations show a very good agreement with results from Gaussian-ONIOM. When comparing the relative energies obtained with different options to a computation where the whole system was treated with the “QM method” DFTB3, the electrostatic embedding scheme with option “delM3” gives the best results. “delM3” means that atoms with up to three bonds distance to the QM region are ignored when creating the external charges. This is done in order to avoid a double counting of Coulomb interactions between QM and MM system. The embedding scheme for the inner system in a three-layer calculation, however, does not have a significant influence on the energies. The same is true for the choice of the coupling scheme: Whether the additive or the subtractive QM/MM interface is applied does not alter the results significantly. The choice of the QM region, though, proved to be an important factor. As can be seen from the comparison of two QM systems of different size, bigger is not always better here. Instead, one has to make sure not to separate important (polar) interactions by the QM/MM border.
After this benchmark study with singlepoint calculations, the various possibilities of CAST were used to approximate the solution of a remaining problem: The predicted reaction energy for the formation of the rhodesain-K11777 complex differs significantly depending on the starting point of the reaction path.
The reason for this is assumed to be an inadequate adjustment of the environment during the scans, which leads to a better stabilization of the starting structure in comparison to the final structure. The first approach to improve this adjustment was performing the relaxed scan with a bigger QM region instead of the minimal QM system used before. While the paths starting from the covalent complex do not change significantly, those starting from the non-covalent complex become more exothermic, leading to a higher similarity of the two paths. Nevertheless, the difference of the reaction energy is still around 15 kcal/mol, which is far from a perfect agreement. For this reason, Umbrella Samplings were run. Here, the adjustment of the environment is not done by local optimizations like in the scans, but by MD simulations. This has the advantage that the system can cross barriers and reach different local minima. The relative free energies obtained by Umbrella Samplings with suitable QM regions are nearly identical, independently of the starting point of the calculation. Thus, \(\Delta A\) evaluated by these computations can be assumed to reproduce the real energy change best. An MD simulation that was started from the transition state in order to mimic a “real-time” reaction indicates a very fast adjustment of the environment during the formation of the complex. This confirms that Umbrella Sampling is probably better suitable to describe the reaction path than a scan, where the environment can never move strong enough to leave the current local minimum.
Two thematic complexes were addressed within this work. One part is related to improvements and new implementations into the CAST program package. Thereby the main focus laid on the delivery of a tool which can be used to characterize complex reactions and their mechanisms. But also within the new force field (FF) method (SAPT-FF) within the CAST program, several improvements were made. The second topic is related to the description of dye molecules and their spectral properties. The main focus within these studies was set on the influence of the environment on these properties. In the first topic improvements of the local acting NEB (nudged elastic band) methods were included and the number of available methods was extended. The initial pathway generation was improved by implementing the IDPP (image dependent pair potential) method and a new method was implemented for describing temperature dependent pathways. Additionally, improvements have been made to the optimization routines (global NEB). As a second part the Pathopt (PO) method was considerably improved. In the beginning of the work the original PO idea was used. In this approach one starts with a global optimization on one n-1 dimensional hyperplane which divides the reaction into two sub-areas for obtaining guesses of TSs (transition states). These found TS guesses were used to optimize to the ”true” TS. Starting from the optimized ones a relaxation to the next connected minima is done. This idea has been automatically implemented and extended to several number of hyperplanes. In this manner a group of pathsegments is obtained which needs to be connected, but within this work it was realized that such a procedure might be not very efficient. Therefore, a new strategy was implemented which is founded on the same constrained global optimization scheme (MCM) for which the user defines the number of hyperplanes generated. The number of such generated hyperplanes should be large enough
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to describe the space between the concerning reactants in a sufficient way. The found minima are directly used to built up the reaction pathway. For this purpose a RMSD (root mean square deviation) criterion is used to walk along ways of minimal change from one to another hyperplane. To prove the implementations various test calculations were carried out and extensions included to prove the capabilities of the new strategy. Related to these tests a new strategy for applying the move steps in MCM (Monte Carlo with minimization) was realized which is also related to the question of the coordinates representation. We were able to show that the hopping steps in MCM can be improved by applying Cartesian steps in combination of random dihedral moves with respect to the constraint. In this way it was possible to show that a large variety of systems can be treated. An additional chapter shows the improvements of the SAPT-FF implementation and related test cases. It was possible to treat benzene dimer and cluster systems of different sizes consistently also in accordance with high level ab initio based approaches. Furthermore, we showed that the SAPT-FF with the right parameters outperforms the standard AMOEBA implementation which is the basis of the SAPT-FF implementation. In the last three chapters deal with the description of perlyene-based dyes. In the first smaller chapter ground state chemistry description of macro cycles of PBI (perylene bisimide) derivatives were investigated. Therefore, AFM (atomic force microscopy) based pictures were explained within our study. The methods to explain aggregation behavior in dependency of the ring size were MD simulations and configuration studies. The last two chapters deal with opto-electronic or photo-physical properties of PBI and PTCDA (perylene-3,4,9,10-tetracarboxylic dianhydride). In detail, we investigated the role of the environment and the aggregate or crystal surrounding by applying different models. In that way implicit and explicit solvation models, the size of aggregates and vibration motions were used. In the case of PBI the recent work is found on preliminary studies related to my bachelor thesis and extends it. It was shown that the direct influence of a polarizable surrounding, as well as explicit inclusion of solvent molecules on the overall description of the excitations and nature of the excited states is weaker as one might expect. However the inclusion of intra-molecular degrees of freedom showed a stronger influence on the state characteristics and can induce a change of the order of states within the dimer picture. For the PTCDA molecule the main focus was set on the description of the absorption spectrum of crystalline thin films. Related to this older works exist which already gave a description and assignment of the absorption band, but are based on different approaches compared to the one used in this work. We used the supermolecule ansatz, whereas the environment and different aggregate sizes were investigated. Within the dimer based approach we were able to show that using continuum solvation (IEFPCM/COSMO) based description for the environment the relative order of states remains unchanged. Similar to the PBI calculations the influence of the vibrational motions /distortions is larger. The simulation of the crystal environment by using QM/MM (quantum mechanics/molecular mechanics) approaches delivered that an asymmetric charge distribution might induce a localization of the excitation and a stronger mixing of states. For obtaining further insights we go beyond the dimer picture and aggregates of different sizes were used, whereas the simulations up to the octadecamer mono- and even dual-layer stack were carried out. Within these calculations it was shown that the H-coupling is dominating over a weaker J-coupling between different stacks. Additionally the calculations based on DFT (density functional theory) and semi-empirics showed that the lowest state in terms of energy are mostly of Frenkel type, whereas the higher lying states are CT ones which mix with embedded Frenkel type states. The first band of the absorption spectrum was explained by inclusion of vibrational motions within the stacks which induce an intensity gain of the first excited state. This intensity was not explainable by using the undistorted stacks. Also relaxations at the crystal surface might play a role, but are experimentally not explainable.
In this thesis, we apply the information-theoretic approach in the context of quantum dynamics and wave packet motion: Information-theoretic measures are calculated from position and momentum densities, which are obtained from time-dependent quantum wave functions. The aim of this thesis is to benchmark, analyze and interpret these quantities and relate their features to the wave packet dynamics. Firstly, this is done for the harmonic oscillator (HO) with and without static disorder. In the unperturbed HO, the analytical study of coherent and squeezed states reveals time-dependent entropy expressions related to the localization of the wave function. In the disordered HO, entropies from classical and quantum dynamics are compared for short and long times. In the quantum case, imprints of wave packet revivals are found in the entropy. Then, the energy dependence of the entropy for very long times is discussed. Secondly, this is donefor correlated electron-nuclear motion. Here, entropies derived from the total, electronic and nuclear density, respectively, are calculated in position and momentum space for weak and strong adiabatic electronic coupling. The correlation between electron and nucleus is investigated using different correlation measures, where some of these functions are sensitive to the nodal structure of the wave function. An analytic ansatz to interpret the information-theoretical quantities is applied as well.
Investigation of Nanostructure-Induced Localized Light Phenomena Using Ultrafast Laser Spectroscopy
(2017)
In recent years, the interaction of light with subwavelength structures, i.e., structures that are smaller than the optical wavelength, became more and more interesting to scientific research, since it provides the opportunity to manipulate light-induced dynamics below the optical diffraction limit. Specifically designed nanomaterials can be utilized to tailor the temporal evolution of electromagnetic fields at the nanoscale. For the investigation of strongly localized processes, it is essential to resolve both their spatial and their temporal behavior. The aim of this thesis was to study and/or control the temporal evolution of three nanostructure-induced localized light phenomena by using ultrafast laser spectroscopy with high spatial resolution.
In Chapter 4, the absorption of near-infrared light in thin-film a-Si:H solar cells was investigated. Using nanotextured instead of smooth interfaces for such devices leads to an increase of absorption from < 20% to more than 50% in the near-infrared regime. Time-resolved experiments with femtosecond laser pulses were performed to clarify the reason for this enhancement. The coherent backscattered radiation from nanotextured solar cell devices was measured as a function of the sample position and evaluated via spectral interferometry. Spatially varying resonance peaks in the recorded spectra indicated the formation of localized photonic modes within the nanotextured absorber layers. In order to identify the modes separately from each other, coherent two-dimensional (2D) nanoscopy was utilized, providing a high spatial resolution < 40 nm. In a nanoscopy measurement on a modified device with an exposed nanotextured a-Si:H absorber layer, hot-spot electron emission was observed and confirmed the presence of localized modes. Fitting the local 2D nanospectra at the hot-spot positions enabled the determination of the resonance frequencies and coherence lifetimes of the modes. The obtained lifetime values varied between 50 fs and 130 fs. Using a thermionic emission model allowed the calculation of the locally absorbed energy density and, with this, an estimation of the localization length of the photonic modes (≈1 μm). The localization could be classified by means of the estimated localization length and additional data evaluation of the backscattered spectra as strong localization ─ the so-called Anderson localization.
Based on the experimental results, it was concluded that the enhanced absorption of near-infrared light in thin-film silicon solar cells with nanotextured interfaces is caused by the formation of strongly localized photonic modes within the disordered absorber layers. The incoming near-infrared light is trapped in these long-living modes until absorption occurs.
In Chapter 5, a novel hybridized plasmonic device was introduced and investigated in both theory and experiment. It consists of two widely separated whispering gallery mode (WGM) nanoantennas located in an elliptical plasmonic cavity. The goal was to realize a periodic long-range energy transfer between the nanoantennas. In finite-difference time-domain (FDTD) simulations, the device was first optimized with respect to strong coupling between the localized antenna modes and the spatially-extended cavity mode. The geometrical parameters of the antennas and the cavity were adjusted separately so that the m="0" antenna mode and the cavity mode were resonant at λ="800 nm" . A high spatial overlap of the modes was achieved by positioning the two antennas in the focal spots of the cavity, leading to a distance between the antenna centers of more than twice the resonant wavelength of the modes. The spectral response of the optimized device revealed an energy splitting of the antenna and the cavity mode into three separated hybridized eigenmodes within an energy range of about 90 meV due to strong coupling. It could be well reproduced by a simple model of three coupled Lorentzian oscillators. In the time domain, an oscillatory energy transfer between both antennas with a period of 86 fs and an energy transfer efficiency of about 7% was observed for single-pulse excitation. For the experiments, devices with cavities and antennas of varying size were fabricated by means of focused-ion-beam (FIB) milling. Time-resolved correlation measurements were performed with high spatial and temporal resolution by using sequences of two femtosecond laser pulses for excitation and photoemission electron microscopy (PEEM) for detection. Local correlation traces at antennas in resonant devices, i.e., devices with enhanced electron emission at both antenna positions, were investigated and reconstructed by means of the coupled-oscillator model. The corresponding spectral response revealed separated peaks, confirming the formation of hybridized eigenmodes due to strong coupling. In a subsequent simulation for single-pulse excitation, one back-and-forth energy transfer between both antennas with an energy transfer efficiency of about 10% was observed.
Based on the theoretical and experimental results, it was demonstrated that in the presented plasmonic device a periodic long-range energy transfer between the two nanoantennas is possible. Furthermore, the coupled-oscillator model enables one to study in depth how specific device properties impact the temporal electric-field dynamics within the device. This can be exploited to further optimize energy transfer efficiency of the device. Future applications are envisioned in ultrafast plasmonic nanocircuitry. Moreover, the presented device can be employed to realize efficient SPP-mediated strong coupling between widely separated quantum emitters.
In Chapter 6, it was investigated in theory how the local optical chirality enhancement in the near field of plasmonic nanostructures can be optimized by tuning the far-field polarization of the incident light. An analytic expression was derived that enables the calculation of the optimal far-field polarizations, i.e., the two far-field polarizations which lead to the highest positive and negative local optical chirality, for any given nanostructure geometry. The two optimal far-field polarizations depend on the local optical response of the respective nanostructure and thus are functions of both the frequency ω and the position r. Their ellipticities differ only in their sign, i.e., in their direction of rotation in the time domain, and the angle between their orientations, i.e., the angle between the principal axes of their ellipses, is ±π/"2" . The handedness of optimal local optical chirality can be switched by switching between the optimal far-field polarizations. In numerical simulations, it was exemplarily shown for two specific nanostructure assemblies that the optimal local optical chirality can significantly exceed the optical chirality values of circularly polarized light in free space ─ the highest possible values in free space. The corresponding optimal far-field polarizations were different from linear and circular and varied with frequency. Using femtosecond polarization pulse shaping provides the opportunity to coherently control local optical chirality over a continuous frequency range. Furthermore, symmetry properties of nanostructures can be exploited to determine which far-field polarization is optimal.
The theoretical findings can have impact on future experimental studies about local optical chirality enhancement. Tuning the far-field polarization of the incident light offers a promising tool to enhance chirally specific interactions of local electromagnetic fields with molecular and other quantum systems in the vicinity of plasmonic nanostructures. The presented approach can be utilized for applications in chiral sensing of adsorbed molecules, time-resolved chirality-sensitive spectroscopy, and chiral quantum control.
In conclusion, each of the localized light phenomena that were investigated in this thesis ─ the enhanced local absorption of near-infrared light due to the formation of localized photonic modes, the periodic long-range energy transfer between two nanoantennas within an elliptical plasmonic cavity, and the optimization of local optical chirality enhancement by tuning the far-field polarization of the incident light ─ can open up new perspectives for a variety of future applications.
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Covalent peptidomimetic protease inhibitors have gained a lot of attention in drug development in recent years. They are designed to covalently bind the catalytically active amino acids through electrophilic groups called warheads. Covalent inhibition has an advantage in terms of pharmacodynamic properties but can also bear toxicity risks due to non-selective off-target protein binding. Therefore, the right combination of a reactive warhead with a well-suited peptidomimetic sequence is of great importance. Herein, the selectivities of well-known warheads combined with peptidomimetic sequences suited for five different proteases were investigated, highlighting the impact of both structure parts (warhead and peptidomimetic sequence) for affinity and selectivity. Molecular docking gave insights into the predicted binding modes of the inhibitors inside the binding pockets of the different enzymes. Moreover, the warheads were investigated by NMR and LC-MS reactivity assays against serine/threonine and cysteine nucleophile models, as well as by quantum mechanics simulations.
Bei Verbrennungsprozessen im Otto-Motor, beim Raffinationsprozess in Erdölraffinerien, im interstellaren Raum oder in der Chemie der Erdatmosphäre spielen Moleküle, wie sie in dieser Arbeit untersucht wurden, eine wichtige Rolle. Allerdings stellt es eine große Herausforderung dar, solch reaktive Substanzen zu erzeugen und zu handhaben. Um das Ethyl-Radikal, ein wichtiges Intermediat z.B. in der Erzeugung von Ethylen, zu untersuchen, wurde eine bestehende Apparatur modifiziert. Diese ermöglicht es, die Geschwindigkeitsverteilung der Fragmente (Ionen oder Elektronen) zweidimensional aufzuzeichnen, die nach der Anregung mittels Laserlicht durch Photodissoziation entstehen. Diese velocity-map imaging Apparatur wurde in einem ersten Schritt mittels der Photodissoziation von Pyrrol bei 240 nm kalibriert. Cycloheptatrien konnte erfolgreich auf seine Photodissoziation untersucht werden, was als Test des VMI-Experiment genutzt wurde. Die gewonnenen Ergebnisse stimmten mit Resultaten überein, welche durch Doppler-Fragmentspektroskopie in dieser und früheren Arbeiten gewonnen wurden. Zwischen 11 und 13 % der Überschussenergie gehen dabei in die Translation des H-Atoms. • Das Ethyl-Radikal zeigte, als das erste mit unserer VMI-Apparatur untersuchte Radikal, eine interessante Photodissoziation: Wird es bei 250 nm angeregt, ergeben sich zwei Dissoziationskanäle, wobei ein bekannter Kanal nach schneller interner Konversion in den Grundzustand Fragmente mit geringer Translationsenergie erzeugt. Der zweite Kanal zeigt anisotropes Verhalten und erzeugt Wasserstoffatome mit hoher Translationsenergie, die mehr als die Hälfte der Überschussenergie abführen. Die Erklärung dieses Prozesses erweist sich schwierig in Anbetracht von durchgeführten Isotopenmarkierungsexperimenten sowie der beobachteten Ratenkonstanten für die Photodissoziation. Eine Interaktion von Valenz- und Rydbergzuständen im Ethyl-Radikal könnte eine Erklärung darstellen. In Zukunft kann beim VMI-Experiment in Würzburg versucht werden, die Auflösung weiter zu verbessern. Dabei ergäben sich im Idealfall zwei scharfe Ringe der H-Atome durch die Spin-Bahn-Aufspaltung von Brom, welche eine sehr genaue Kalibrierung ermöglichen. Neben den Ergebnissen auf dem Gebiet der Photodissoziation, die mit der VMI-Apparatur erzielt wurden, konnten mittels Synchrotronstrahlung und Aufzeichnen der Photoelektronen mittels VMI und der TPEPICO-Technik die folgenden Ergebnisse erhalten werden: • Von Propargylen, einem von drei C3H2 Isomeren, konnte die adiabatische Ionisierungsenergie (IEad) mit 8.99 eV bestimmt werden. Der Vorläufer Diazopropin, eine sehr instabile Substanz, wurde dazu synthetisiert und mit Synchrotronlicht untersucht. Allerdings war es nicht möglich, die Schwingungen im Kation oder die dissoziative Photoionisation (DPI) des Carbens zu untersuchen, da Diazopropin seinerseits bereits bei Energien von 9 eV durch DPI zerfällt. Allerdings konnte ein Peak im TPES des zyklischen Isomers aus einer früheren Messung eindeutig dem Propargylen zugeordnet werden. Ein Ausweg die DPI zu umgehen stellt die Verwendung eines anderen Vorläufers dar. Beispielsweise wurde dazu Propargylchlorid getestet, welches aber nicht das Propargylen erzeugt, sondern das zyklische Isomer Cyclopropenyliden. Daneben können durch ein Doppel-Imaging Experiment, bei dem die Ionen genauso wie die Elektronen mit einem bildgebenden Detektor aufgezeichnet werden, Ionen mit kinetischer Energie aus DPI von Ionen aus der Ionisation ohne kinetischer Energie unterschieden werden. • Von den substituierten Methyl-Radikalen Brommethyl sowie Cyanomethyl konnte die IEad (8.62 bzw. 10.28 eV) und vom Brommethyl die DPI (AE0K = 13.95 eV) bestimmt werden. Daraus konnte der Einfluss der Substituenten auf die IEad im Vergleich zum Methyl-Radikal (IE = 9.84 eV) gezeigt werden. Das zeigt, dass der Brom-Substituent das Kation, der Cyano-Rest dagegen das Radikal stabilisiert. Ebenso konnten aus den Ergebnissen beim Brommethyl thermodynamische Daten wie die Standardbildungsenthalpie des Radikals (ΔH0f= 174.5 kJ/mol) oder Bindungsenergien gewonnen werden. Letztere betragen 334 kJ/mol für die C-Br Bindung im Brommethyl-Radikal sowie 505 kJ/mol im Kation. • Das Fulvenallen (C7H6) wurde aus Phthalid durch Pyrolyse erzeugt und dessen IEad mit 8.22 eV bestimmt. Schwingungen konnten im Kation aufgelöst und zugeordnet werden. Außerdem konnte erstmals die IEad des Fulvenallenyl-Radikals (C7H5) mit 8.19 eV festgelegt werden. Im Vergleich zu früheren Messungen zeigte sich, dass aus Toluol in der Pyrolyse ebenfalls die beiden C7H5/C7H6 Isomere entstehen. Um verschiedene C7H5/C7H6 Isomere in einem Verbrennungsprozess zu unterscheiden, wäre es vorteilhaft, experimentell bestimmte Ionisierungsenergien von anderen Isomeren zu kennen.
Isolated 2‐phenylallyl radicals (2‐PA), generated by pyrolysis from a nitrite precursor, have been investigated by IR/UV ion dip spectroscopy using free electron laser radiation. 2‐PA is a resonance‐stabilized radical that is considered to be involved in the formation of polycyclic aromatic hydrocarbons (PAH) in combustion, but also in interstellar space. The radical is identified based on its gas‐phase IR spectrum. Furthermore, a number of bimolecular reaction products are identified, showing that the self‐reaction as well as reactions with unimolecular decomposition products of 2‐PA form several PAH efficiently. Possible mechanisms are discussed and the chemistry of 2‐PA is compared with the one of the related 2‐methylallyl and phenylpropargyl radicals.
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.
Zur Charakterisierung der Wechselwirkungen zwischen organischen Dispergiermitteln und nanoskaligen Oberflächen stellen Komplexe aus Kohlenstoffnanoröhren und (Bio-)Polymeren aufgrund der großen Oberfläche der Nanoröhren und der kommerziellen Verfügbarkeit fluoreszenzmarkierter DNA-Oligomere unterschiedlicher Länge sowie intrinsisch fluoreszierender Polymere ein vielversprechendes Modellsystem dar. Im Rahmen der vorliegenden Dissertation wurden verschiedene Methoden evaluiert, um die Stabilität derartiger Komplexe zu untersuchen und dadurch Rückschlüsse auf das Adsorptionsverhalten der (Bio-)Polymere zu ziehen. Dabei konnte gezeigt werden, dass das publizierte helikale Adsorptionsmodell der DNA auf Kohlenstoffnanoröhren die Resultate der durchgeführten Experimente nur unzureichend beschreiben kann und stattdessen andere Adsorptionskonformationen in Erwägung gezogen werden müssen.