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主动向列液晶动力学对拓扑约束的不敏感性。

Insensitivity of active nematic liquid crystal dynamics to topological constraints.

机构信息

Physics Department, Brandeis University, Waltham, Massachusetts 02453, USA.

出版信息

Phys Rev E. 2018 Jan;97(1-1):012702. doi: 10.1103/PhysRevE.97.012702.

Abstract

Confining a liquid crystal imposes topological constraints on the orientational order, allowing global control of equilibrium systems by manipulation of anchoring boundary conditions. In this article, we investigate whether a similar strategy allows control of active liquid crystals. We study a hydrodynamic model of an extensile active nematic confined in containers, with different anchoring conditions that impose different net topological charges on the nematic director. We show that the dynamics are controlled by a complex interplay between topological defects in the director and their induced vortical flows. We find three distinct states by varying confinement and the strength of the active stress: A topologically minimal state, a circulating defect state, and a turbulent state. In contrast to equilibrium systems, we find that anchoring conditions are screened by the active flow, preserving system behavior across different topological constraints. This observation identifies a fundamental difference between active and equilibrium materials.

摘要

限制液晶对取向序施加拓扑约束,允许通过操纵锚定边界条件对平衡系统进行全局控制。在本文中,我们研究了这种类似的策略是否可以控制活性液晶。我们研究了一种在容器中受限的伸展活性向列的流体动力学模型,其中不同的锚定条件对向列指向矢施加不同的净拓扑电荷。我们表明,动力学受到指向矢中的拓扑缺陷及其诱导的涡旋流之间复杂的相互作用的控制。通过改变约束和活性应力的强度,我们发现了三种不同的状态:拓扑最小状态、循环缺陷状态和湍流状态。与平衡系统不同,我们发现锚定条件被活性流屏蔽,从而在不同的拓扑约束下保持系统行为。这一观察结果确定了活性和平衡材料之间的一个基本区别。

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