TY - THES A1 - Sapotta, Meike T1 - Perylene Bisimide Cyclophanes: Recognition of Alkaloids, Aggregation Behavior in Aqueous Environment and Guest-Mediated Chirality Transfer T1 - Perylenbisimidcyclophane: Alkaloiderkennung, Aggregationsverhalten in wässriger Umgebung und gastvermittelter Chiralitätstransfer N2 - Inspired by the fact that sufficient solubility in aqueous media can be achieved by functional substitution of perylene bisimides (PBIs) with polar groups, one of the essential aims of this thesis was the design and successful synthesis of the new water-soluble PBI cyclophanes [2PBI]-1m and [2PBI]-1p, which are appended with branched, hydrophilic oligoethylene glycol (OEG) chains. Subsequently, the focus was set on the elucidation of properties of PBI cyclophane hosts which are also of relevance for recognition processes in biological systems. The performance of the new amphiphilic PBI cyclophane [2PBI]-1p as synthetic receptors for various natural aromatic alkaloids in aqueous media was thoroughly investigated. Alkaloids represent a prominent class of ubiquitous nitrogen containing natural compounds with a great structural variety and diverse biological activity. As of yet, no chromophore host acting as a molecular probe for a range of alkaloids such as harmine or harmaline is known. In addition, the self-association behavior of cyclophane host [2PBI]-1m and its reference monomer in water was studied in order to gain insights into the thermodynamic driving forces affecting the self-assembly process of these two PBI systems in aqueous environment. Moreover, the chirality transfer upon guest binding previously observed for a PBI cyclophane was investigated further. The assignment of the underlying mechanism of guest recognition to either the induced fit or conformational selection model was of particular interest. N2 - Diese Arbeit befasste sich mit der Erforschung neuer Eigenschaften von Perylenbisimid-cyclophanwirten, zum Beispiel der Gast-Komplexierung in wässriger Umgebung (Kapitel 3.2) oder dem Einfluss von Wasser beim Selbstassemblierungsprozess einer dieser Wirte in Wasser (Kapitel 3.3). Weiterhin wurden der Chiralitätstransfer durch Gasterkennung und das der Wirt-Gast-Komplexbildung zugrunde liegende mechanistische Modell untersucht (Kapitel 3.4). ... KW - Supramolekulare Chemie KW - Perylenderivate KW - Wirt-Gast-Beziehung KW - Host-Guest-Chemistry KW - Self-Assembly in Water KW - Chirality Transfer KW - Chiralität KW - Selbstorganisation KW - Organische Chemie Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-200028 ER - TY - THES A1 - Hecht, Markus T1 - Liquid-Crystalline Perylene Bisimide and Diketopyrrolopyrrole Assemblies T1 - Flüssigkristalline Perylenbisimid- und Diketopyrrolopyrrolstrukturen N2 - The research presented in this thesis illustrates that self-assembly of organic molecules guided by intermolecular forces is a versatile bottom-up approach towards functional materials. Through the specific design of the monomers, supramolecular architectures with distinct spatial arrangement of the individual building blocks can be realized. Particularly intriguing materials can be achieved when applying the supramolecular approach to molecules forming liquid-crystalline phases as these arrange in ordered, yet mobile structures. Therefore, they exhibit anisotropic properties on a macroscopic level. It is pivotal to precisely control the interchromophoric arrangement as functions originate in the complex structures that are formed upon self-assembly. Consequently, the aim of this thesis was the synthesis and characterization of liquid-crystalline phases with defined supramolecular arrangements as well as the investigation of the structure-property relationship. For this purpose, perylene bisimide and diketopyrrolopyrrole chromophores were used as they constitute ideal building blocks towards functional supramolecular materials due to their thermal stability, lightfastness, as well as excellent optical and electronic features desirable for the application in, e.g., organic electronics. N2 - Mithilfe von Gestaltungsprinzipien der supramolekularen Chemie können komplexe Strukturen realisiert werden, die mit Ansätzen der kovalenten Chemie nicht erreichbar sind. Ein zentraler Aspekt ist hierbei der systematische Aufbau der Monomereinheiten, welche unter geeigneten Bedingungen über intermolekulare Wechselwirkungen selbstassemblieren und Architekturen mit spezifischer räumlicher Anordnung der einzelnen Bauelemente formen. Flüssigkristalline Materialien zeigen zusätzlich zu positioneller und Orientierungsfernordnung der Moleküle, welche anisotrope Eigenschaften auf makroskopischer Ebene erzeugen, eine gewisse Mobilität. Daher können durch Kombination des supramolekularen Ansatzes mit Flüssigkristallen besonders interessante Materialien erzeugt werden. Da die spezische Anordnung der Moleküle die Funktion des selbstassemblierten Materials stark beeinflusst, ist es von großer Bedeutung, diese exakt kontrollieren zu können. Daher war es Ziel dieser Arbeit, flüssigkristalline Phasen mit einer definierten supramolekularen Struktur zu synthetisieren und zu charakterisieren. Weiterhin war es ein Ziel, diese auf ihre funktionellen Eigenschaften zu untersuchen, die aus der spezifischen Anordnung der Monomereinheiten hervorgehen. Für diesen Zweck wurden Perylenbisimid- und Diketopyrrolopyrrolfarbstoffe als Baueinheiten verwendet, da diese aufgrund ihrer Licht- und Hitzestabilität sowie exzellenten optischen und elektronischen Eigenschaften ideale Materialien für die Anwendung in der organischen Elektronik darstellen. KW - Selbstorganisation KW - Flüssigkristall KW - Perylenderivate KW - Perylene Bisimide KW - Liquid Crystal KW - J-Aggregates KW - Photoconductivity KW - Self-Assembly KW - Perylenbisimid Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-216987 ER - TY - THES A1 - Shen, Chia-An T1 - Dicyanomethylene Squaraines: Aggregation and G-Quadruplex Complexation T1 - Dicyanomethylen-Squaraine: Aggregation und G-Quadruplex-Komplexierung N2 - Squaraine dyes have attracted more attention in the past decade due to their strong and narrow absorption and fluorescence along with the easily functionalized molecular structure. One successful approach of core functionalization is to replace one oxygen of the squaric carbonyl group with a dicyanomethylene group, which shifts the absorption and emission into the near infrared (NIR) region and at the same time leads to a rigid, planar structure with C2v symmetry. However, such squaraines tend to aggregate cofacially in solution due to dispersion forces and dipole-dipole interactions, usually leading to H-type exciton coupling with undesired blue-shifted spectrum and quenched fluorescence. Therefore, the goal of my research was the design of dicyanomethylene-substituted squaraine dyes that self-assemble into extended aggregates in solution with J-type coupling, in order to retain or even enhance their outstanding optical properties. Toward this goal, bis(squaraine) dyes were envisioned with two squaraine units covalently linked to trigger a slip-stacked packing motif within the aggregates to enable J-type coupling. In my first project, bis(squaraine) dye BisSQ1 was synthesized, in which two dicyanomethylene squaraine chromophores are covalently linked. Concentration and temperature-dependent UV/Vis/NIR spectroscopy experiments reveal that BisSQ1 undergoes cooperative self-assembly resulting in J-type aggregates in a solvent mixture of toluene/1,1,2,2-tetrachloroethane (TCE) (98:2, v/v). The J type exciton coupling is evident from the significantly red shifted absorption maximum at 886 nm and the fluorescence peak at 904 nm. In conclusion, this was a first example to direct squaraine dye aggregation in solution to the more desired slip-stacked packing leading to J-type exciton coupling by simply connecting two dyes in a head-to-tail bis chromophore structure. Connecting two squaraine dyes with an additional phenylene spacer (BisSQ2) leads to two different polymorphs with very distinct absorption spectra upon cooling down a solution of BisSQ2 in a solvent mixture of toluene/TCE (98:2, v/v) with different rates. Accordingly, rapid cooling resulted in rigid helical nanorods with an absorption spectrum showing a panchromatic feature, while slow cooling led to a sheet-like structure with a significant bathochromic shift in the absorption spectrum. It was discovered that the conventional molecular exciton model failed to explain the panchromatic absorption features of the nanorods for the given packing arrangement, therefore more profound theoretical investigations based on the Essential States Model (ESM) were applied to unveil the importance of intermolecular charge transfer (ICT) to adequately describe the panchromatic absorption spectrum. Moreover, the red-shift observed in the spectrum for the sheet-like structure can be assigned to the interplay of Coulomb coupling and ICT-mediated coupling. Furthermore, the same bis-chromophore strategy was adopted for constructing an NIR-II emitter with a bathochromically-shifted spectrum. In chloroform, BisSQ3 exhibits an absorption maximum at 961 nm with a significant bathochromic shift (1020 cm−1) compared to the reference mono-squaraine SQ, indicating intramolecular J-type coupling via head-to-tail arrangement of two squaraine dyes. Moreover, BisSQ3 shows a fluorescence peak at 971 nm with a decent quantum yield of 0.33%. In less polar toluene, BisSQ3 self-assembles into nanofibers with additional intermolecular J-type coupling, causing a pronounced bathochromic shift with absorption maximum at 1095 nm and a fluorescence peak at 1116 nm. Thus, connecting two quinoline-based squaraines in a head-to-tail fashion leads to not only intra-, but also intermolecular J-type exciton coupling, which serves as a promising strategy to shift the absorption and emission of organic fluorophores into the NIR-II window while retaining decent quantum yields. In conclusion, my research illustrates based on squaraine dyes how a simple modification of the molecular structure can significantly affect the aggregation behavior and further alter the optical properties of dye aggregates. Elongated supramolecular structures based on dicyanomethylene substituted squaraine dyes were successfully established by covalently linking two squaraine units to form a bis-chromophore structure. Then, a simple but efficient general approach was established to direct squaraine dye aggregation in solution to the more desired slip-stacked packing leading to J-type exciton coupling by directly connecting two squaraine dyes in a head-to-tail fashion without spacer units. Moreover, the additional spacer between the squaraine dyes in BisSQ2 allowed different molecular conformations, which leads to two different morphologies depending on the cooling rates for a hot solution. Hence, this is a promising strategy to realize supramolecular polymorphism. In general, it is expected that the concept of constructing J-aggregates by the bis-chromophore approach can be extended to entirely different classes of dyes since J-aggregates possess a variety of features such as spectral shifts into the NIR window, fluorescence enhancement, and light harvesting, which are commonly observed and utilized for numerous fundamental studies and applications. Moreover, the insights on short-range charge transfer coupling for squaraine dyes is considered of relevance for all materials based on alternating donor-acceptor π-systems. The panchromatic spectral feature is in particular crucial for acceptor-donor-acceptor (ADA) dyes, which are currently considered as very promising materials for the development of bulk heterojunction solar cells. N2 - Squarainfarbstoffe haben in den letzten Jahren aufgrund ihrer hervorragenden optischen Eigenschaften, zu denen ein Cyanin-ähnliches Absorptions- und Fluoreszenzverhalten zählt, in Kombination mit einer leicht funktionalisierbaren Molekülstruktur immer mehr Aufmerksamkeit auf sich gezogen.22 Ein erfolgreicher Ansatz der Kernfunktionalisierung besteht darin, ein Sauerstoffatom der Quadratsäure-Carbonylgruppe durch eine Dicyanomethyleneinheit zu ersetzen, was die Absorption und Emission in den nahen infraroten (NIR-) Bereich verschiebt und gleichzeitig zu einer starren planaren Struktur mit C2v Symmetrie und einem Grundzustandsdipolmoment führt.27 Diese Eigenschaften haben sich als vorteilhaft für die π-π-Aggregation von diesen Squarainen auf G-Quadruplex (G4) Strukturen erwiesen, wie in Kapitel 6 beschrieben. Solche Squaraine neigen jedoch zur Bildung von Dimeren oder kleinen Aggregaten in Lösung mit kofazialen Chromophoranordnungen aufgrund Dispersionskräften und Dipol-Dipol-Wechselwirkungen. Dies resultiert in der Regel zu einer H-artigen exzitonischen Kopplung mit unerwünschten, blauverschobenen Absorptionsbanden und gelöschter Fluoreszenz.28 Daher war das Ziel dieser Dissertation, Dicyanomethylen-substituierte Squarainfarbstoffe zu entwickeln, die sich in Lösung zu verlängerten Aggregaten mit J-artiger Kopplung selbst organisieren. Auf diese Weise sollten die ausgezeichneten optischen Eigenschaften der Squarainfarbstoffe erhalten oder sogar verbessert werden. Zu diesem Zweck, wurden Bis(squarain)-Farbstoffe synthetisiert, in denen zwei Squarain-Einheiten kovalent verbunden sind, was zu einer gestapelten Anordnung mit longitudinalem Versatz innerhalb der Aggregate und damit zu einer J-artigen Kopplung führt. ... KW - Squaraine KW - Selbstorganisation KW - Farbstoff KW - Supramolekulare Chemie KW - Quadruplex-DNS KW - Self-assembly KW - Aggregation KW - exciton coupling KW - cooperative KW - spectroscopy Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-243599 ER - TY - THES A1 - Peethambaran Nair Syamala, Pradeep T1 - Bolaamphiphilic Rylene Bisimides: Thermodynamics of Self-assembly and Stimuli-responsive Properties in Water T1 - Bolaamphiphile Rylenebisimide: Thermodynamik der Selbstorganisation und Stimuli-responsiven Merkmale in Wasser N2 - The present thesis demonstrates how different thermodynamic aspects of self-assembly and stimuli-responsive properties in water can be encoded on the structure of π-amphiphiles, consisting of perylene or naphthalene bisimide cores. Initially, quantitative thermodynamic insights into the entropically-driven self-assembly was studied for a series of naphthalene bisimides with UV/Vis and ITC measurements, which demonstrated that their thermodynamic profile of aggregation is heavily influenced by the OEG side chains. Subsequently, a control over the bifurcated thermal response of entropically driven and commonly observed enthalpically driven self-assembly was achieved by the modulation of glycol chain orientation. Finally, Lower Critical Solution Temperature (LCST) phenomenon observed for these dyes was investigated as a precise control of this behavior is quintessential for self-assembly studies as well as to generate ‘smart’ materials. It could be shown that the onset of phase separation for these molecules can be encoded in their imide substituents, and they are primarily determined by the supramolecular packing, rather than the hydrophobicity of individual monomers. N2 - Die vorliegende Arbeit zeigt, wie verschiedene thermodynamische Aspekte der Selbstorganisation sowie die Stimuli-responsiven Merkmale in Wasser mittels der Struktur von π-Amphiphilen mit Perylen- oder Naphthalinbisimidkernen programmiert werden können. Zunächst wurden quantitative thermodynamische Einblicke in die entropisch getriebene Selbstorganisation für eine Reihe von Naphthalinbisimiden mit UV / Vis- und ITC-Messungen untersucht. Diese zeigten, dass ihr thermodynamisches Aggregationsprofil stark von den Oligoethylenglykol-Seitenketten beeinflusst wird. Anschließend wurde durch gezielte Modulation der Glykolketten und der daraus resultierenden Neuorientierung der Ketten, eine Kontrolle über die Thermodynamik der Selbstassemblierung zwischen der häufiger beobachtbaren enthalpisch getriebenen und der entropisch getriebenen Selbstorganisation erreicht. Schließlich wurde das für diese Farbstoffe beobachtete Phänomen der niedrigeren kritischen Lösungstemperatur (LCST) untersucht, da eine genaue Kontrolle dieses Verhaltens für Selbstorganisationsstudien sowie für die Erzeugung „intelligenter“ Materialien von entscheidender Bedeutung ist. Es konnte gezeigt werden, dass der Beginn der Phasentrennung für diese Moleküle von ihren Imidsubstituenten und hauptsächlich durch die supramolekulare Packung bestimmt werden und nicht durch die Hydrophobie einzelner Monomere. KW - Supramolekulare Chemie KW - Aggregation KW - Selbstorganisation KW - Wasser KW - Supramolecular Chemistry KW - Thermodynamics KW - Self-assembly KW - Lower Critical Solution Temperature (LCST) KW - Water KW - Organische Chemie Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-213424 ER -