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Formation of Polymer Walls through the Phase Separation of a Liquid Crystal Mixture Induced by a Spatial Elastic Energy Difference

机译:通过空间弹性能差引起的液晶混合物的相分离形成聚合物壁

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摘要

We propose a method to form polymer walls without the use of a photomask in a liquid crystal (LC) cell by phase separation of an LC mixture induced by a spatial elastic energy difference. When an in-plane electric field is applied to a vertically aligned cell filled with a mixture of LC and a reactive monomer (RM), a high spatial elastic energy is induced along the direction perpendicular to the interdigitated electrodes. RMs move to the boundaries where the elastic energy is very high and an in-plane component of the applied electric field exists, which results in the phase separation of the LC/RM mixture. We have shown that we can form polymer walls by applying ultraviolet light irradiation to the LC cell. These polymer walls can function as alignment layers. We observed morphological patterns of the polymer structure through polarized optical microscopy, scanning electron microscopy, and atomic force microscopy. The polymer walls formed in an LC cell can affect the orientation of LCs in the lateral direction. Bistable switching of a polymer-walled cell could be achieved by using three-terminal electrodes where both vertical and in-plane electric fields can be applied. Vertical anchoring with the alignment layer on each substrate allows LC molecules to remain vertically aligned after removal of the applied vertical electric field. Furthermore, in-plane anchoring with the formed polymer walls allows the LC molecules to remain homogeneously aligned after removal of the applied in-plane electric field. The proposed method for the formation of polymer structures could be a useful tool to fabricate LC cells for various applications. As a bistable phase-grating device, the diffraction efficiency of a polymer-walled cell was comparable to that of a pure-LC cell. Its operating voltage was 44% lower than that of a pure-LC cell owing to in-plane anchoring provided by the polymer walls. Moreover, it can be operated with very low power because it does not require power to maintain the state. In addition, the total response time of a polymer-walled cell was approximately 68% shorter than that of a pure-LC cell because all switching was forcibly controlled by applying an electric field.
机译:我们提出一种通过空间弹性能差引起的液晶混合物相分离而在液晶(LC)单元中不使用光掩模的情况下形成聚合物壁的方法。当向填充有LC和反应性单体(RM)的混合物的垂直排列的电池施加面内电场时,会在垂直于叉指电极的方向上感应出高空间弹性能。 RMs移至弹性能非常高的边界,并且存在施加的电场的面内分量,这导致LC / RM混合物的相分离。我们已经表明,可以通过对LC单元施加紫外线来形成聚合物壁。这些聚合物壁可以用作取向层。我们通过偏振光学显微镜,扫描电子显微镜和原子力显微镜观察了聚合物结构的形态模式。 LC单元中形成的聚合物壁会影响LC在横向方向上的方向。可以通过使用三端电极实现聚合物壁电池的双稳态切换,在三端电极中可以同时施加垂直电场和平面电场。在每个基板上通过取向层进行垂直锚固后,LC分子在去除所施加的垂直电场后即可保持垂直取向。此外,与所形成的聚合物壁的平面内锚固允许LC分子在去除所施加的平面内电场之后保持均匀排列。所提出的用于形成聚合物结构的方法可能是制造用于各种应用的LC单元的有用工具。作为双稳态相位光栅设备,聚合物壁电池的衍射效率与纯LC电池相当。由于聚合物壁提供的平面内锚固,其工作电压比纯LC电池低44%。而且,由于不需要电源来维持状态,因此可以用非常低的功率进行操作。另外,聚合物壁电池的总响应时间比纯LC电池的总响应时间短约68%,这是因为所有开关都是通过施加电场来强制控制的。

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