@article{BaeumerKarthaAllampallyetal.2019, author = {B{\"a}umer, Nils and Kartha, Kalathil K. and Allampally, Naveen Kumar and Yagai, Shiki and Albuquerque, Rodrigo Q. and Fern{\´a}ndez, Gustavo}, title = {Kontrolle {\"u}ber Selbstassemblierung durch Ausnutzung von Koordinationsisomerie}, series = {Angewandte Chemie}, volume = {131}, journal = {Angewandte Chemie}, number = {44}, doi = {10.1002/ange.201908002}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-212176}, pages = {15772 -- 15776}, year = {2019}, abstract = {Hierin wird die inh{\"a}rente geometrische Isomerie eines PtII Komplexes als neues Werkzeug zur Kontrolle von supramolekularen Assemblierungsprozessen ausgenutzt. Bestrahlung mit UV-Licht sowie die sorgf{\"a}ltige Auswahl des verwendeten L{\"o}sungsmittels, der Temperatur und Konzentration f{\"u}hren zu einer regelbaren Koordinationsisomerie. Dies erm{\"o}glicht ein vollst{\"a}ndig reversibles Schalten zwischen zwei definierten aggregierten Spezies (1D Fasern ↔ 2D Lamellen) mit unterschiedlichem photoresponsivem Verhalten. Unsere Erkenntnisse erweitern nicht nur die Reichweite von Koordinationsisomerie, sondern er{\"o}ffnen auch aufregende M{\"o}glichkeiten zur Entwicklung neuartiger stimuliresponsiver Materialien.}, language = {de} } @phdthesis{Kirchner2019, author = {Kirchner, Eva}, title = {Discrete Supramolecular Stacks by Self-Assembly and Folding of Bis(merocyanine) Dyes}, doi = {10.25972/OPUS-15941}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-159419}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2019}, abstract = {The present thesis describes the development of a strategy to create discrete finite-sized supramolecular stacks of merocyanine dyes. Thus, bichromophoric stacks of two identical or different chromophores could be realized by folding of bis(merocyanine) dyes and their optical properties were discussed in terms of exciton theory. Quantum chemical calculations revealed strong exciton coupling between the chromophores within the homo- and hetero-π-stacks and the increase of the J-band of the hetero-dimers with increasing energy difference between the excited states of the chromophores could be attributed not only to the different magnitudes of transition dipole moments of the chromophores but also to the increased localization of the excitation in the respective exciton state. Furthermore, careful selection of the length of the spacer unit that defines the interplanar distance between the tethered chromophores directed the self-assembly of the respective bis(merocyanines) into dimers, trimers and tetramers comprising large, structurally precise π-stacks of four, six or eight merocyanine chromophores. It could be demonstrated that the structure of such large supramolecular architectures can be adequately elucidated by commonly accessible analysis tools, in particular NMR techniques in combination with UV/vis measurements and mass spectrometry. Supported by TDDFT calculations, the absorption spectra of the herein investigated aggregates could be explained and a relationship between the absorption properties and the number of stacking chromophores could be established based on exciton theory.}, subject = {Merocyanine}, language = {en} } @phdthesis{Dhara2017, author = {Dhara, Ayan}, title = {Stimuli-Responsive Self-Assembly and Spatial Functionalization of Organic Cages Based on Tribenzotriquinacenes}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-154762}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2017}, abstract = {Within this thesis, synthetic strategies for self-assembled organic cage compounds have been developed that allow for both stimuli-responsive control over assembly/disassembly processes and spatial control over functionalization. To purposefully operate the reversible assembly of organic cages, boron-nitrogen dative bonds have been exploited for the formation of a well-defined, discrete bipyramidal organic assembly in solution. Thermodynamic association equilibria for cage formation have been investigated by Isothermal Titration Calorimetry (ITC). Temperature-dependent NMR studies revealed a reversible cage opening upon heating and quantitative reassembly upon cooling. For the spatial functionalization of organic cages, two divergent molecular building units have been designed and synthesized, namely tribenzotriquinacene derivatives possessing a terminal alkyne moiety at the apical position and a meta-diboronic acid having a pyridyl group at the 2-position. Facile access to a variety of apically functionalized tribenzotriquinacenes has been illustrated by post-synthetic modifications at the terminal alkyne group by Sonogashira cross-coupling and azide-alkyne click reactions. Finally, these apically functionalized tribenzotriquinacene building blocks have been implemented into boronate ester-based organic cage compounds showing modular exohedral functionalities.}, subject = {Selbstorganisation}, language = {en} } @phdthesis{Sengupta2011, author = {Sengupta, Sanchita}, title = {Bio-inspired Zinc Chlorin Dye Assemblies for Supramolecular Electronics}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-66935}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2011}, abstract = {Chlorophylls are the most important pigments owing to their involvement in photosynthesis. They perform multiple functions that arise due to their optical and redox as well as packing properties. Semisynthetic zinc chlorins investigated in this thesis are the counterparts for the natural protein-free bacteriochlorophyll (BChl) c assemblies in light-harvesting (LH) systems in bacterial chlorosomes. The major advantage of the zinc chlorin model compounds over the native BChls lies in their facile semisynthetic accessibility from chlorophyll a (Chl a), their higher chemical stability and the possibility to influence their packing by suitable chemical modifications of peripheral side chains. Whilst the favorable excitonic properties and the suitability of ZnChl and natural BChl c dye aggregates for long distance exciton transport are well documented, charge transport properties of aggregates of semisynthetic ZnChls are hitherto unexplored. The present study involves structural elucidations of aggregates of a variety of semisynthetic zinc chlorin derivatives in solution, in solid state and on surfaces by combination of spectroscopic, crystallographic and microscopic techniques, followed by investigation of charge transport properties and conductivities of these aggregates. Chart 1 shows the different ZnChls synthesized in this work that are functionalized with hydroxy or methoxy substituents at 31 position and contain different substituents at the 172-position benzyl ester functional group. The self-assembly of these dyes is strongly dependent upon their chemical structures. While ZnChls 1a, 2a, 3, which are functionalized with 31-hydroxy group bearing dodecyl and oligoethylene glycol side chains form well-soluble rod aggregates, the corresponding 31-methoxy functionalized counterparts 1b, 2b form stacks in solution and on surfaces. These supramolecular polymers have been studied in detail in Chapter 3 by UV/Vis and circular dichroism (CD) spectroscopy and dynamic light scattering (DLS). These studies provided useful insights into the aggregation process of these two types of aggregates. Whereas 31-hydroxy functionalized ZnChl 1a self-assemble into rod aggregates via an isodesmic mechanism, corresponding stack aggregates of ZnChl 1b are formed by a cooperative nucleation-elongation pathway. Detailed electron microscopic studies such as transmission electron microscopy (TEM) and scanning transmission electron microscopy (STEM) provided unequivocal evidence for hollow tubular nanostructures of water-soluble 31-hydroxy zinc chlorin 3 aggregates for the first time. The measured tube diameter of ~ 5-6 nm of these aggregates is in excellent agreement with electron microscopy data of BChl c rod aggregates in chlorosomes (Chloroflexus aurantiacus, diameter ~ 5-6 nm) and thus complied with the tubular model postulated by Holzwarth and Schaffner... In concord with their highly organized structures, micrometer-scale one dimensionality, robust nature and efficient charge transport capabilities, these self-assembled ZnChl nanotubular, stack and liquid crystalline assemblies are highly promising for supramolecular electronic applications. Research efforts in utilizing these assemblies for (opto)electronic device fabrication, for instance, in organic field effect transistors, should thus be rewarding in the future...}, subject = {Supramolekulare Chemie}, language = {en} }