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使用朗道-德热纳理论模拟胆甾相蓝相:外加电场的影响

Simulation of cholesteric blue phases using a Landau-de Gennes theory: effect of an applied electric field.

作者信息

Fukuda Jun-Ichi, Yoneya Makoto, Yokoyama Hiroshi

机构信息

Nanotechnology Research Institute, National Institute of Advanced Industrial Science and Technology, Tsukuba 305-8568, Japan.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2009 Sep;80(3 Pt 1):031706. doi: 10.1103/PhysRevE.80.031706. Epub 2009 Sep 15.

Abstract

We investigate numerically static and dynamic properties of cholesteric blue phases. Our study is based on a Landau-de Gennes theory describing the orientational order of a liquid crystal in terms of a second-rank tensor. To find the shape and size of the unit cell conforming to the minimum of the free energy, we let the geometrical parameters characterizing the unit cell relax in the course of the time evolution via a simple relaxational equation. We investigate the effect of an electric field on the structure of cholesteric blue phases. We study how the deformation of the unit cell in response to the electric field E depends on the strength and direction of the electric field and the original structure of cholesteric blue phases. Our results qualitatively agree with the experimental findings. Although in a weak field, the strain tensor is proportional to E2 as previously argued, for a moderate field the distortion is no longer proportional to E2 and can be even nonmonotonic with respect to E2 . Furthermore, we investigate the kinetic processes of the deformation, rearrangement, and extinction of disclination lines under a strong electric field. We show that the kinetics of disclination lines is highly complicated and sensitively depends on the initial structure of blue phases, the direction of the electric field, and the sign of dielectric anisotropy epsilon(a). In most cases, a strong field aligns the liquid crystals in a uniform (positive epsilon(a)) or helical (negative epsilon(a)) manner without disclination lines. However, for negative epsilon(a) and the direction of the electric field parallel to the body diagonal of the unit cell, disclination lines do not disappear and form a two-dimensional hexagonal lattice.

摘要

我们对胆甾相蓝相的静态和动态特性进行了数值研究。我们的研究基于朗道 - 德热纳理论,该理论用二阶张量描述液晶的取向序。为了找到符合自由能最小值的晶胞形状和尺寸,我们通过一个简单的弛豫方程,让表征晶胞的几何参数在时间演化过程中弛豫。我们研究了电场对胆甾相蓝相结构的影响。我们研究了晶胞响应电场(E)的变形如何依赖于电场的强度和方向以及胆甾相蓝相的原始结构。我们的结果在定性上与实验发现一致。尽管在弱场中,应变张量如先前所述与(E^2)成正比,但在中等场强下,畸变不再与(E^2)成正比,甚至可能相对于(E^2)是非单调的。此外,我们研究了强电场下 disclination 线的变形、重排和消失的动力学过程。我们表明,disclination 线的动力学非常复杂,并且敏感地依赖于蓝相的初始结构、电场方向和介电各向异性(\epsilon(a))的符号。在大多数情况下,强场会使液晶以均匀(正(\epsilon(a)))或螺旋(负(\epsilon(a)))方式排列,且没有 disclination 线。然而,对于负(\epsilon(a))且电场方向平行于晶胞体对角线的情况,disclination 线不会消失并形成二维六边形晶格。

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