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各向异性液滴在可混溶液-液界面上的图案化表面锚定。

Patterned surface anchoring of nematic droplets at miscible liquid-liquid interfaces.

机构信息

Department of Chemical and Biological Engineering, University of Wisconsin-Madison, Madison, Wisconsin 53706, USA.

出版信息

Soft Matter. 2017 Aug 30;13(34):5714-5723. doi: 10.1039/c7sm00975e.

Abstract

We report on the internal configurations of droplets of nematic liquid crystals (LCs; 10-50 μm-in-diameter; comprised of 4-cyano-4'-pentylbiphenyl and 4-(3-acryloyloxypropyloxy)benzoic acid 2-methyl-1,4-phenylene ester) sedimented from aqueous solutions of sodium dodecyl sulfate (SDS) onto interfaces formed with pure glycerol. We observed a family of internal LC droplet configurations and topological defects consistent with a remarkably abrupt transition from homeotropic (perpendicular) to tangential anchoring on the surface of the LC droplets in the interfacial environment. Calculations of the interdiffusion of water and glycerol at the aqueous-glycerol interface revealed the thickness of the diffuse interfacial region of the two miscible liquids to be small (0.2-0.5 μm) compared to the diameters of the LC droplets on the experimental time-scale (15-120 minutes), leading us to hypothesize that the patterned surface anchoring was induced by gradients in concentration of SDS and glycerol across the diameter of the LC droplets in the interfacial region. This hypothesis received additional support from experiments in which the time of sedimentation of the LC droplets onto the interface was systematically increased and the droplets were photo-polymerized to preserve their configurations: the configurations of the LC droplets were consistent with a time-dependent decrease in the fraction of the surface area of each droplet exhibiting homeotropic anchoring. Specifically, LC droplets with <10% surface area with tangential anchoring exhibited a bulk point defect within the LC droplet, whereas droplets with >10% surface area with tangential anchoring exhibited a boojum defect within the tangential region and a disclination loop separated the regions with tangential and homeotropic anchoring. The topological charge of these LC droplet configurations was found to be consistent with the geometrical theorems of Poincaré and Gauss and also well-described by computer simulations performed by minimization of a Landau-de Gennes free energy. Additional experimental observations (e.g., formation of "Janus-like" particles with one hemisphere exhibiting tangential anchoring and the other perpendicular anchoring) and simulations (e.g., a size-dependent set of LC droplet configurations with <10% surface area exhibiting tangential anchoring) support our general conclusion that placement of LC droplets into miscible liquid-liquid interfacial environments with compositional gradients can lead to a rich set of LC droplet configurations with symmetries and optical characteristics that are not encountered in LC droplet systems in homogeneous, bulk environments. Our results also reveal that translocation of LC droplets across liquid-liquid interfaces can define new transition pathways that connect distinct configurations of LC droplets.

摘要

我们报告了从含有十二烷基硫酸钠(SDS)的水溶液中沉降到与纯甘油形成的界面上的各向异性液晶(LC)液滴(直径为 10-50μm,由 4-氰基-4'-戊基联苯和 4-(3-丙烯酰氧基丙氧基)苯甲酸 2-甲基-1,4-亚苯基酯组成)的内部配置。我们观察到一系列内部 LC 液滴结构和拓扑缺陷,这些结构和缺陷与 LC 液滴在界面环境中从垂直于表面的各向异性到切向锚定的急剧转变一致。对水和甘油在水-甘油界面处的互扩散的计算表明,与 LC 液滴在实验时间尺度(15-120 分钟)上的直径相比,两种可混溶液体的扩散界面区域的厚度较小(0.2-0.5μm),这使我们假设在界面区域中,沿 LC 液滴直径存在 SDS 和甘油浓度梯度,导致图案化表面锚定。该假设得到了以下实验的额外支持:系统地增加 LC 液滴沉降到界面上的时间,并将液滴光聚合以保留其结构:LC 液滴的结构与每个液滴表现出垂直锚定的表面积分数随时间的减少一致。具体而言,具有<10%的具有切向锚定的表面积的 LC 液滴在 LC 液滴内表现出体点缺陷,而具有>10%的具有切向锚定的表面积的 LC 液滴在切向区域内表现出 boojum 缺陷,并且在切向和垂直锚定的区域之间分离出一个扭曲环。这些 LC 液滴结构的拓扑电荷被发现与 Poincaré 和 Gauss 的几何定理一致,并且通过最小化朗道-德加尼斯自由能进行的计算机模拟也很好地描述了这些电荷。其他实验观察结果(例如,一个半球具有切向锚定而另一个半球具有垂直锚定的“类 Janus”粒子的形成)和模拟结果(例如,一组具有<10%的具有切向锚定的表面积的 LC 液滴配置)支持我们的一般结论,即将 LC 液滴置于具有组成梯度的可混溶的液-液界面环境中可以导致具有在均相、本体环境中不会遇到的对称和光学特性的丰富的 LC 液滴配置。我们的结果还表明,LC 液滴在液-液界面之间的迁移可以定义连接不同 LC 液滴配置的新的转变途径。

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