18 resultados para Lexicographically Ordered Chains


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Liquid crystalline elastomers (LCEs) are known to perform a reversible change of shape upon the phase transition from the semi-ordered liquid crystalline state to the chaotic isotropic state. This unique behavior of these “artificial muscles” arises from the self-organizing properties of liquid crystals (mesogens) in combination with the entropy-elasticity of the slightly crosslinked elastomer network. In this work, micrometer-sized LCE actuators are fabricated in a microfluidic setup. The microtubular shear flow provides for a uniform orientation of the mesogens during the crosslinking, a perquisite for obtaining actuating LCE samples. The scope of this work was to design different actuator geometries and to broaden the applicability of the microfluidic device for different types of liquid crystalline mesogens, ranging from side-chain to main-chain systems, as well as monomer and polymer precursors. For example, the thiol-ene “click” mechanism was used for the polymerization and crosslinking of main-chain LCE actuators. The main focus was, however, placed on acrylate monomers and polymers with LC side chains. A LC polymer precursor, comprising mesogenic and crosslinkable side-chains was synthesized. Used in combination with an LC monomer, the polymeric crosslinker promoted a stable LC phase, which allowed the mixture to be isothermally handled in the microfluidic reactor. If processed without the additional LC components, the polymer precursor yielded actuating fibers. A suitable co-flowing continuous phase facilitates the formation of a liquid jet and lowers the tendency for drop formation. By modification of the microfluidic device, it was further possible to prepare core-shell particles, comprised of an LCE shell and filled with an isotropic liquid. In analogy to the heart, a hollow muscle, the elastomer shell expels the inner liquid core upon its contraction. The feasibility of the core-shell particles as micropumps was demonstrated. In general, the synthesized LCE microactuators may be utilized as active components in micromechanical and lab-on-chip systems.

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Die Selbstorganisation von amphiphilen Molekülen wird genutzt, um in Lösung, auf der Oberfläche, in der festen Phase und an der Flüssig/Fest-Grenzfläche nanoskopisch strukturierte Materialien zu erhalten. Ziel hierbei ist es, die Dynamik der niedermolekularen Amphiphile mit der Stabilität der hochmolekularen Amphiphile zu vereinigen, um damit die Selbstorganisation der Moleküle zu kontrollieren. Drei Konzepte zur Strukturierung von Kohlenstoff durch Selbstorganisation werden vorgestellt. Im ersten Konzept werden aus Hexaphenylbenzol-Polyethylenglykol- (HPB-PEG) und Hexa-peri-hexabenzocoronen- (HBC-PEG) Derivaten wurmähnliche bzw. faserförmige Strukturen in wässriger Lösung erhalten. Der Wassergehalt in den Hydrogelfasern aus den HPB-PEG-Derivaten kann durch das Substitutionsmuster der Amphiphile und die Länge der PEG-Ketten eingestellt werden. Die Hydrogelfasern ähneln anders als die bisherigen Verfahren, die zur Faserherstellung verwendet werden (Extrudieren, Mikrofluid-Verarbeitung oder Elektrospinning), Systemen in der Natur. Der Beweis für die Bildung von Hydrogelfasern wird mittels spezieller Methoden der polarisierten und depolarisierten dynamischen Lichtstreuung erbracht. Im zweiten Konzept werden durch Elektronenbestrahlung und Pyrolyse von 3',4',5',6'-Tetraphenyl-[1,1':2',1''-terphenyl]-4,4''-dithiol homogene Kohlenstoffmembranen mit Poren erzeugt, die Anwendung in der Filtration finden können und im dritten Konzept wird die Selbstorganisation von einem ortho-verknüpften HPB-Trimer an der Flüssig/Fest-Grenzfläche untersucht. Auf diese Weise werden hochgeordnete lamellare Strukturen erhalten. In allen drei Konzepten sind die Geometrie und die Größe der Moleküle die entscheidenden Parameter zur Erzeugung definierter Strukturen.

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Graphene nanoribbons (GNRs), which are defined as nanometer-wide strips of graphene, are attracting an increasing attention as one on the most promising materials for future nanoelectronics. Unlike zero-bandgap graphene that cannot be switched off in transistors, GNRs possess open bandgaps that critically depend on their width and edge structures. GNRs were predominantly prepared through “top-down” methods such as “cutting” of graphene and “unzipping” of carbon nanotubes, but these methods cannot precisely control the structure of the resulting GNRs. In contrast, “bottom-up” chemical synthetic approach enables fabrication of structurally defined and uniform GNRs from tailor-made polyphenylene precursors. Nevertheless, width and length of the GNRs obtainable by this method were considerably limited. In this study, lateral as well as longitudinal extensions of the GNRs were achieved while preserving the high structural definition, based on the bottom-up solution synthesis. Initially, wider (~2 nm) GNRs were synthesized by using laterally expanded monomers through AA-type Yamamoto polymerization, which proved more efficient than the conventional A2B2-type Suzuki polymerization. The wider GNRs showed broad absorption profile extending to the near-infrared region with a low optical bandgap of 1.12 eV, which indicated a potential of such GNRs for the application in photovoltaic cells. Next, high longitudinal extension of narrow (~1 nm) GNRs over 600 nm was accomplished based on AB-type Diels–Alder polymerization, which provided corresponding polyphenylene precursors with the weight-average molecular weight of larger than 600,000 g/mol. Bulky alkyl chains densely installed on the peripheral positions of these GNRs enhanced their liquid-phase processability, which allowed their formation of highly ordered self-assembled monolayers. Furthermore, non-contact time-resolved terahertz spectroscopy measurements demonstrated high charge-carrier mobility within individual GNRs. Remarkably, lateral extension of the AB-type monomer enabled the fabrication of wider (~2 nm) and long (>100 nm) GNRs through the Diels–Alder polymerization. Such longitudinally extended and structurally well-defined GNRs are expected to allow the fabrication of single-ribbon transistors for the fundamental studies on the electronic properties of the GNRs as well as contribute to the development of future electronic devices.