| Literature DB >> 27633941 |
Karla G Gutierrez-Cuevas1, Ling Wang1, Zhi-Gang Zheng1, Hari K Bisoyi1, Guoqiang Li2, Loon-Seng Tan3, Richard A Vaia3, Quan Li4.
Abstract
Adding colloidal nanoparticles into liquid-crystal media has become a promising pathway either to enhance or to introduce novel properties for improved device performance. Here we designed and synthesized new colloidal hybrid silica nanoparticles passivated with a mesogenic monolayer on the surface to facilitate their organo-solubility and compatibility in a liquid-crystal host. The resulting nanoparticles were identified by 1 H NMR spectroscopy, TEM, TGA, and UV/Vis techniques, and the hybrid nanoparticles were doped into a dual-frequency cholesteric liquid-crystal host to appraise both their compatibility with the host and the effect of the doping concentration on their electro-optical properties. Interestingly, the silica-nanoparticle-doped liquid-crystalline nanocomposites were found to be able to dynamically self-organize into a helical configuration and exhibit multi-stability, that is, homeotropic (transparent), focal conic (opaque), and planar states (partially transparent), depending on the frequency applied at sustained low voltage. Significantly, a higher contrast ratio between the transparent state and scattering state was accomplished in the nanoparticle-embedded liquid-crystal systems.Entities:
Keywords: frequency dependence; helical superstructures; liquid crystals; self-organization; silica nanoparticles; tunable transparency
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Year: 2016 PMID: 27633941 PMCID: PMC5540573 DOI: 10.1002/anie.201606895
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336