Ionically Charged Topological Defects in Nematic Fluids

J. Everts, M. Ravnik
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引用次数: 5

Abstract

Charge profiles in liquid electrolytes are of crucial importance for applications, such as supercapacitors, fuel cells, batteries, or the self-assembly of particles in colloidal or biological settings. However, creating localised (screened) charge profiles in the bulk of such electrolytes, generally requires presence of surfaces -for example provided by colloidal particles or outer surfaces of the material, - which poses a fundamental constraint on the material design. Here, we show that topological defects in nematic electrolytes can perform as regions for local charge separation, forming charged defect cores and in some geometries even electric multilayers, as opposed to the electric double layers found in isotropic electrolytes. Using a Landau-de Gennes-Poisson-Boltzmann theoretical framework, we show that ions highly effectively couple with the topological defect cores via ion solvability, and with the local director-field distortions of the defects via flexoelectricity. The defect charging is shown for different defect types -- lines, points and walls -- using geometries of ionically screened flat IN interfaces, radial hedgehog point defects and half-integer wedge disclinations in the bulk and as stabilised by (charged) colloidal particles. More generally, our findings are relevant for possible applications where topological defects act as diffuse ionic capacitors or as ionic charge carriers.
向列流体中的离子带电拓扑缺陷
液体电解质中的电荷分布对于超级电容器、燃料电池、电池或胶体或生物环境中粒子的自组装等应用具有至关重要的意义。然而,在这种电解质的大部分中创建局部(筛选)电荷分布,通常需要表面的存在-例如由胶体颗粒或材料的外表面提供-这对材料设计构成了基本限制。在这里,我们表明向列电解质中的拓扑缺陷可以作为局部电荷分离的区域,形成带电缺陷核心,在某些几何形状中甚至形成电多层,而不是在各向同性电解质中发现的电双层。利用Landau-de Gennes-Poisson-Boltzmann理论框架,我们证明了离子通过离子可解性与拓扑缺陷核高度有效地耦合,并通过挠性电与缺陷的局部董事场畸变高度有效地耦合。利用离子屏蔽的平面IN界面、径向刺猬点缺陷和半整数楔形斜向的几何形状,以及由(带电)胶体颗粒稳定的形状,显示了不同缺陷类型(线、点和壁)的缺陷充电。更一般地说,我们的发现与拓扑缺陷作为扩散离子电容器或离子电荷载体的可能应用相关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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