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变形向列相和近晶相液晶球中的director 扭曲和相位调制。

Director Distortion and Phase Modulation in Deformable Nematic and Smectic Liquid Crystal Spheroids.

机构信息

Department of Chemical Engineering, University of South Carolina, Columbia, South Carolina 29208, United States.

Hong Kong University of Science & Technology, Clear Water Bay, Kowloon 999077, Hong Kong.

出版信息

Langmuir. 2022 Dec 13;38(49):15272-15281. doi: 10.1021/acs.langmuir.2c02461. Epub 2022 Dec 1.

Abstract

The growing interest in integrating liquid crystals (LCs) into flexible and miniaturized technologies brings about the need to understand the interplay between spatially curved geometry, surface anchoring, and the order associated with these materials. Here, we integrate experimental methods and computational simulations to explore the competition between surface-induced orientation and the effects of deformable curved boundaries in uniaxially and biaxially stretched nematic and smectic microdroplets. We find that the director field of the nematic LCs upon uniaxial strain reorients and forms a larger twisted defect ring to adjust to the new deformed geometry of the stretched droplet. Upon biaxial extension, the director field initially twists in the now oblate geometry and subsequently transitions into a uniform vertical orientation at high strains. In smectic microdroplets, on the other hand, LC alignment transforms from a radial smectic layering to a quasi-flat layering in a compromise between interfacial and dilatation forces. Upon removing the mechanical strain, the smectic LC recovers its initial radial configuration; however, the oblate geometry traps the nematic LC in the metastable vertical state. These findings offer a basis for the rational design of LC-based flexible devices, including wearable sensors, flexible displays, and smart windows.

摘要

对将液晶(LCs)集成到灵活和微型化技术中的兴趣日益浓厚,这就需要了解空间弯曲几何形状、表面锚定以及与这些材料相关的有序之间的相互作用。在这里,我们整合了实验方法和计算模拟,以探索单轴和双轴拉伸向列相和近晶相微滴中表面诱导取向与可变形弯曲边界效应之间的竞争。我们发现,单轴应变下向列相 LC 的指向矢场重新取向并形成较大的扭曲缺陷环,以适应拉伸液滴的新变形几何形状。在双轴拉伸下,指向矢场最初在现在的扁球几何形状中扭曲,随后在高应变下转变为均匀的垂直取向。另一方面,在近晶相微滴中,LC 排列从径向近晶层状结构转变为准平面层状结构,这是界面和膨胀力之间的妥协。在去除机械应变后,近晶 LC 恢复其初始的径向构型;然而,扁球几何形状将向列 LC 困在亚稳态的垂直状态。这些发现为基于 LC 的柔性器件的合理设计提供了基础,包括可穿戴传感器、柔性显示器和智能窗户。

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