18 resultados para STATE C-13 NMR


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In this work supramolecular organic systems based on rigid pi-conjugated building blocks and flexible side chains were studied via solid-state NMR spectroscopy. Specifically, these studies focussed on phenylene ethynylene based macrocycles, polymer systems including polythiophenes, and rod-coil copolymers of oligo(p-benzamide) and poly(ethylene glycol). All systems were studied in terms of the local order and mobility. The central topic of this dissertation was to elucidate the role of the flexible side chains in interplay of different non-covalent interactions, like pi-pi-stacking and hydrogen bonding.Combining the results of this work, it can be concluded that the ratio of the rigid block and the attached alkyl side chains can be crucial for the design of an ordered pi-conjugated supramolecular system. Through alkyl side chains, it is also possible to introduce liquid-crystalline phases in the system, which can foster the local order of the system. Moreover in the studied system longer, unbranched alkyl side chains are better suited to stabilize the corresponding aggregation than shorter, branched ones.The combination of non-covalent interactions such as pi-pi-stacking and hydrogen bonding play an important role for structure formation. However, the effect of pi-pi-stacking interaction is much weaker than the effect of hydrogen bonding and is only observed in systems with a suitable local order. Hence, they are often not strong enough to control the local order. In contrast, hydrogen bonds predominantly influence the structural organization and packing. In comparison the size of the alkyl side chains is only of minor importance. The suppression of certain hydrogen bonds can lead to completely different structures and can induce a specific aggregation behavior. Thus, for the design of a supramolecular ordered system the presence of hydrogen bonding efficiently stabilizes the corresponding structure, but the ratio of hydrogen bond forming groups should be kept low to be able to influence the structure selectively.

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Bakterien besitzen membranintegrierte Sensoren für die Reaktion auf verändernde Umweltbedingungen.rnViele der Sensoren sind Zweikomponenten-Systeme bestehend aus einer Sensorhistidinkinase und einem Responseregulator der die zellulare Antwort auslöst. DcuS, der C4-Dicarboxylat-Sensor von DcuS ist eine membranintegrierte Histidin-Kinase. DcuS ist ein Multidomänen-Protein mit einer sensorischen periplasmatischen PASP (Per-Arnt-Sim) Domäne, zwei Transmembranhelices, eine cytoplasmatische PASC-Domäne und eine C-terminale Kinase-Domäne. PAS-Domänen sind ubiquitäre Signalmodule die in allen Reichen des Lebens zu finden sind. PAS-Domänen detektieren eine Vielfalt von Reizen wie Licht, Sauerstoff, Redoxpotential und verschiedene kleine Moleküle so wie die Modulation von Protein-Protein Interaktionen. PAS-Domänen sind strukturell homolog und besitzen eine charakteristische α/β-Faltung. Eine große Anzahl der sensorischen PAS-Domänen wurden identifiziert, aber viele der PAS-Domänen besitzen keinen apparenten Cofaktor und die Funktion ist unbekannt.rnEine Kombination aus gerichteter und ungerichteter Mutagenese, Protein-Protein-Interaktionsstudien und Festkörper-NMR (ssNMR) Experimente mit strukturellem Modelling wurde zur Untersuchung der Struktur und Funktion der cytoplasmatischen PAS-Domäne des membranintegrierten Sensors DcuS verwendet. Die Experimente zeigen, dass PASC eine wichtige Rolle in die Signaltransduktion von PASP zur C-terminalen Histidin-Kinase von DcuS spielt.rn

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This thesis describes the ultra-precise determination of the g-factor of the electron bound to hydrogenlike 28Si13+. The experiment is based on the simultaneous determination of the cyclotron- and Larmor frequency of a single ion, which is stored in a triple Penning-trap setup. The continuous Stern-Gerlach effect is used to couple the spin of the bound electron to the motional frequencies of the ion via a magnetic bottle, which allows the non-destructive determination of the spin state. To this end, a highly sensitive, cryogenic detection system was developed, which allowed the direct, non-destructive detection of the eigenfrequencies with the required precision.rnThe development of a novel, phase sensitive detection technique finally allowed the determination of the g-factor with a relative accuracy of 40 ppt, which was previously inconceivable. The comparison of the hereby determined value with the value predicted by quantumelectrodynamics (QED) allows the verification of the validity of this fundamental theory under the extreme conditions of the strong binding potential of a highly charged ion. The exact agreement of theory and experiment is an impressive demonstration of the exactness of QED. The experimental possibilities created in this work will allow in the near future not only further tests of theory, but also the determination of the mass of the electron with a precision that exceeds the current literature value by more than an order of magnitude.