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片状微椭球体的制造与电场驱动主动推进

Fabrication and Electric Field-Driven Active Propulsion of Patchy Microellipsoids.

作者信息

Lee Jin Gyun, Al Harraq Ahmed, Bishop Kyle J M, Bharti Bhuvnesh

机构信息

Cain Department of Chemical Engineering, Louisiana State University, Baton Rouge, Louisiana 70803, United States.

Department of Chemical Engineering, Columbia University, New York, New York 10027, United States.

出版信息

J Phys Chem B. 2021 Apr 29;125(16):4232-4240. doi: 10.1021/acs.jpcb.1c01644. Epub 2021 Apr 20.

Abstract

Active colloids are a synthetic analogue of biological microorganisms that consume external energy to swim through viscous fluids. Such motion requires breaking the symmetry of the fluid flow in the vicinity of a particle; however, it is challenging to understand how surface and shape anisotropies of the colloid lead to a particular trajectory. Here, we attempt to deconvolute the effects of particle shape and surface anisotropy on the propulsion of model ellipsoids in alternating current (AC) electric fields. We first introduce a simple process for depositing metal patches of various shapes on the surfaces of ellipsoidal particles. We show that the shape of the metal patch is governed by the assembled structure of the ellipsoids on the substrate used for physical vapor deposition. Under high-frequency AC electric field, ellipsoids dispersed in water show linear, circular, and helical trajectories which depend on the shapes of the surface patches. We demonstrate that features of the helical trajectories such as the pitch and diameter can be tuned by varying the degree of patch asymmetry along the two primary axes of the ellipsoids, namely longitudinal and transverse. Our study reveals the role of patch shape on the trajectory of ellipsoidal particles propelled by induced charge electrophoresis. We develop heuristics based on patch asymmetries that can be used to design patchy particles with specified nonlinear trajectories.

摘要

活性胶体是生物微生物的合成类似物,它们消耗外部能量在粘性流体中游动。这种运动需要打破粒子附近流体流动的对称性;然而,理解胶体的表面和形状各向异性如何导致特定轨迹具有挑战性。在这里,我们试图剖析粒子形状和表面各向异性对模型椭球体在交变电流(AC)电场中推进的影响。我们首先介绍一种在椭球形粒子表面沉积各种形状金属贴片的简单方法。我们表明,金属贴片的形状由用于物理气相沉积的基板上椭球体的组装结构决定。在高频交流电场下,分散在水中的椭球体呈现出线性、圆形和螺旋形轨迹,这取决于表面贴片的形状。我们证明,通过改变贴片沿椭球体两个主轴(即纵向和横向)的不对称程度,可以调整螺旋轨迹的特征,如螺距和直径。我们的研究揭示了贴片形状对感应电荷电泳驱动的椭球形粒子轨迹的作用。我们基于贴片不对称性开发了启发式方法,可用于设计具有特定非线性轨迹的贴片粒子。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5c01/8279480/8543d437cd26/jp1c01644_0001.jpg

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