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掺杂金纳米粒子的向列型液晶的电光性能。

Electro-optical performance of nematic liquid crystals doped with gold nanoparticles.

作者信息

Chausov D N, Kurilov A D, Kucherov R N, Simakin A V, Gudkov S V

机构信息

Moscow Region State University, 24 Very Voloshinoy St., Mytishchi, 141014, Russia.

Prokhorov General Physics Institute of the Russian Academy of Sciences, 38 Vavilova St., Moscow, 119991, Russia.

出版信息

J Phys Condens Matter. 2020 Jun 23;32(39). doi: 10.1088/1361-648X/ab966c.

Abstract

The effect of gold nanoparticles on the dielectric, electro-optical, and rheological properties of the ZhK-1289 liquid-crystal mixture that define the response time of liquid-crystal devices with a concentration range of 0.06-5 wt% was investigated in this study. A phase diagram of the obtained composites was formed demonstrating an increase in the clearing temperature and a broadening of the mesophase existence range in the case of doping nanoparticles. It was found that in the obtained dispersions there are structural rearrangements in the low concentration range leading to an increase in the lateral bending stiffness of the liquid-crystal matrix, a decrease in the response time and threshold voltage of the Freedericksz transition, and also an increase in the anisotropy of the dielectric permittivity and the refraction index. The improvement of the electro-optical performance of the liquid crystal can be caused by the nanoparticle adsorption of impurity ions, which reduces the field-screening effect in the liquid crystal. According to the results obtained in this study, the optimal values of the physical parameters of liquid-crystal composites doped with gold nanoparticles for their application in practice are achieved in a concentration range of 0.5-1 wt%.

摘要

本研究考察了金纳米颗粒对ZhK - 1289液晶混合物介电、电光和流变性能的影响,这些性能决定了浓度范围为0.06 - 5 wt%的液晶器件的响应时间。形成了所得复合材料的相图,表明在掺杂纳米颗粒的情况下,清亮点温度升高,中间相存在范围变宽。研究发现,在所获得的分散体中,低浓度范围内存在结构重排,导致液晶基体的侧向弯曲刚度增加,弗雷德里克兹转变的响应时间和阈值电压降低,介电常数和折射率的各向异性也增加。液晶电光性能的改善可能是由于纳米颗粒对杂质离子的吸附,这降低了液晶中的场屏蔽效应。根据本研究获得的结果,掺杂金纳米颗粒的液晶复合材料在实际应用中物理参数的最佳值在0.5 - 1 wt%的浓度范围内实现。

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