540 Chemie und zugeordnete Wissenschaften
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Im Rahmen dieser Arbeit wurde gezeigt, dass die elektronischen Eigenschaften und das Packungsverhalten von Naphthalindiimid (NDI)- und Diketopyrrolopyrrol (DPP)- Derivaten durch Einführen geeigneter Substituenten sowie durch Erweiterung des konjugierten Pi-Systems zur Optimierung der Eigenschaften als organische Halbleitermaterialien eingestellt werden können. Während DPP-Halbleiter zwar in Polymeren, nicht jedoch als niedermolekulare Halbleiter, für die organische Elektronik von Bedeutung sind, stellen vor allem die hier vorgestellten cyanierten DPP-Derivate eine synthetisch leicht zugängliche Klasse an niedermolekularen p-Halbleitern mit exzellenten Lochtransporteigenschaften dar. Die Expansion des NDI- und DPP-Kerns eröffnet zudem den synthetischen Zugang zu neuen Verbindungsklassen mit veränderten elektronischen Eigenschaften. Gerade das für die Carbazolocarbazoldiimide postulierte Konzept einer elektronenreichen p-Transportachse konnte durch Wahl geeigneter Imidsubstituenten zur Entwicklung zweidimensionaler p-Halbleiter mit sehr guten Mobilitäten führen. Schließlich stellen 2,6-kernhalogenierte NDI-Derivate mit fluorierten Imidgruppen aufgrund der herausragenden Elektronenmobilitäten und der sehr hohen Luftstabilität außergewöhnliche Kandidaten für den Einsatz als n-Halbleiter in organischen Dünnschichttransistoren dar.
In this work, a series of redox cascades was synthesised and investigated in view of their photophysical and electrochemical properties. The cascades are based on a perchlorinated triphenylmethyl radical acceptor and two triarylamine donors. Absorption spectra showed the presence of charge-transfer bands in the NIR range of the spectra, which pointed to the population of a charge-transfer state between a triarylamine donor and the radical acceptor. A weak to moderate emission in the NIR range of the spectra was observed for all compounds in cyclohexane. Spectroelectrochemical measurements were used to investigate the characteristic spectral features of the oxidised and reduced species of all compounds. Transient absorption spectra in the ns- and fs-time regime revealed an additional hole transfer in the cascades between the triarylamine donors, resulting in a charge-separated state. Charge-separation and -recombination processes were found to be located in the ps-time regime.
In summary, it can be stated that the herein studied set of acceptor-substituted squaraine dyes can be seen as potent candidates for OTFTs. Furthermore, their transistor performance can be easily tuned to obtain hole mobilities up to 0.45 cm2/Vs from solution and 1.3 cm2/Vs from sublimation by choosing adequate deposition techniques. In the end, a probable structural model derived from studies of the thin-film morphology by methods such as optical spectroscopy, AFM and X-ray even facilitated the clarification of the observed charge transport behavior.
The SARS virus is the etiological agent of the severe acute respiratory syndrome, a deadly disease that caused more than 700 causalities in 2003. One of its viral proteins, the SARS coronavirus main protease, is considered as a potential drug target and represents an important model system for other coronaviruses. Despite extensive knowledge about this enzyme, it still lacks an effective anti-viral drug. Furthermore, it possesses some unusual features related to its active-site region. This work gives atomistic insights into the SARS coronavirus main protease and tries to reveal mechanistic aspects that control catalysis and inhibition. Thereby, it applies state-of-the-art computational methods to develop models for this enzyme that are capable to reproduce and interpreting the experimental observations. The theoretical investigations are elaborated over four main fields that assess the accuracy of the used methods, and employ them to understand the function of the active-site region, the inhibition mechanism, and the ligand binding. The testing of different quantum chemical methods reveals that their performance depends partly on the employed model. This can be a gas phase description, a continuum solvent model, or a hybrid QM/MM approach. The latter represents the preferred method for the atomistic modeling of biochemical reactions. A benchmarking uncovers some serious problems for semi-empirical methods when applied in proton transfer reactions. To understand substrate cleavage and inhibition of SARS coronavirus main protease, proton transfer reactions between the Cys/His catalytic dyad are calculated. Results show that the switching between neutral and zwitterionic state plays a central role for both mechanisms. It is demonstrated that this electrostatic trigger is remarkably influenced by substrate binding. Whereas the occupation of the active-site by the substrate leads to a fostered zwitterion formation, the inhibitor binding does not mimic this effect for the employed example. The underlying reason is related to the coverage of the active-site by the ligand, which gives new implications for rational improvements of inhibitors. More detailed insights into reversible and irreversible inhibition are derived from in silico screenings for the class of Michael acceptors that follow a conjugated addition reaction. From the comparison of several substitution patterns it becomes obvious that different inhibitor warheads follow different mechanisms. Nevertheless, the initial formation of a zwitterionic catalytic dyad is found as a common precondition for all inhibition reactions. Finally, non-covalent inhibitor binding is investigated for the case of SARS coranavirus main protease in complex with the inhibitor TS174. A novel workflow is developed that includes an interplay between theory and experiment in terms of molecular dynamic simulation, tabu search, and X-ray structure refinement. The results show that inhibitor binding is possible for multiple poses and stereoisomers of TS174.
Die paläotropischen Pflanzenfamilien der Ancistrocladaceae und Dioncophyllaceae sind die bisher einzig bekannten Produzenten von Naphthylisochinolin-Alkaloiden. Diese spezielle Klasse acetogeniner Sekundärmetabolite weist durch die verschiedenen Kupplungspositionen der beiden namensgebenden Molekülbausteine eine breite strukturelle Diversität auf und zeichnet sich durch vielfältige pharmakologische Wirksamkeiten, z.B. antiplasmodiale, antileishmaniale oder antitrypanosomale Aktivitäten, aus. Zur Synthese dieser Naturstoffe wurde im Arbeitskreis Bringmann eigens eine Methodik entwickelt, das Lacton -Konzept. Diese Methode erlaubt durch eine Vorfixierung der beiden Molekülhälften durch eine Esterbrücke, anschließender intramolekularer Kupplungsreaktion und der stereoselektiven Öffnung des erhaltenen Lactons den atropselektiven Aufbau der Naphthylisochinoline. Als Ziele dieser Arbeit ergaben sich somit die Synthese pharmakologisch und strukturell interessanter Naphthylisochinolin-Alkaloide mittels des Lacton-Konzepts sowie die Isolierung und Strukturaufklärung weiterer Sekundärmetabolite aus Triphyophyllum peltatum (Dioncophyllaceae), welche anschließend auf ihre Bioaktivität hin untersucht werden sollten, um potenziell neue Leitstrukturen für neue Wirkstoffe zu finden.