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Alignment and electrooptic effects in nanoparticle-doped nematic liquid crystals

机译:纳米粒子掺杂向列液晶的取向和电光效应

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It is well known that doping nematic liquid crystals with nanoparticles can alter the electrooptic response of the nematic host as well as the alignment of the liquid crystal molecules on various substrates. In addition, nanoparticles dispersed in a nematic matrix often induce defects and defect patterns justifying the necessity for more detailed optical and electro-optic investigations including effects of nanoparticle size, coating, concentration and core material. We studied the local alignment of nematic LC molecules in such dispersions by means of fluorescence confocal polarizing microscopy. The results of two- and three-dimensional imaging indicate that frequently observed birefringent stripes, which are induced by the presence of metal nanoparticles and semiconductor quantum dots, correspond to twist disclinations located at the LC/substrate interface. The luminescence of dispersed quantum dots shows that the ends of these disclination threads are pinned to conglomerates of nanoparticles that stabilize these line defects. By performing (x,z)-scans, it can be shown that the defects are not walls extending through the entire cell gap, but lines that are located at the substrate surface. Our experiments also confirm, as hypothesized before, that the nanoparticles preferably reside at the liquid crystal/substrate interfaces. Finally, detailed electrooptic investigations also revealed that a contrast inversion observed earlier is initiated by a change from parallel to homeotropic anchoring, thereby causing an instability, which in turn leads to the appearance of convection rolls (Kapustin-Williams domains). This electrohydrodynamic instability is likely an example for the behavior of (+, -) systems predicted by de Gennes, which was only recently experimentally observed for the first time.
机译:众所周知,用纳米粒子掺杂向列液晶可以改变向列主体的电光响应,以及改变液晶分子在各种基板上的排列。另外,分散在向列基体中的纳米粒子通常会引起缺陷和缺陷模式,这证明有必要进行更详细的光学和电光研究,包括纳米颗粒尺寸,涂层,浓度和核心材料的影响。我们通过荧光共聚焦偏振显微镜研究了这种分散体中向列LC分子的局部排列。二维和三维成像的结果表明,由金属纳米颗粒和半导体量子点的存在引起的经常观察到的双折射条纹对应于LC /基板界面处的扭曲旋错。分散的量子点的发光表明这些旋错线的末端固定在稳定这些线缺陷的纳米粒子的团块上。通过执行(x,z)扫描,可以证明缺陷不是延伸穿过整个单元间隙的壁,而是位于基板表面的线。如之前所假设的,我们的实验还证实了纳米颗粒优选位于液晶/基底界面处。最后,详细的电光研究还表明,较早观察到的对比度反转是由平行锚向垂直锚的变化引起的,从而导致不稳定,进而导致对流辊的出现(Kapustin-Williams域)。这种电流体动力学不稳定性可能是de Gennes预测的(+,-)系统行为的一个例子,这是最近才首次在实验中观察到的。

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