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柱状结构周围的拟二维细菌游动:增强的捕获效率和曲率依赖性。

Quasi-two-dimensional bacterial swimming around pillars: Enhanced trapping efficiency and curvature dependence.

机构信息

Department of Physics, The University of Tokyo, 7-3-1 Hongo, Tokyo 113-0033, Japan.

Department of Basic Science, The University of Tokyo, 3-8-1 Komaba, Tokyo 153-8902, Japan.

出版信息

Phys Rev E. 2023 Jan;107(1-1):014602. doi: 10.1103/PhysRevE.107.014602.

Abstract

Microswimmers exhibit more diverse behavior in quasi-two dimensions than in three dimensions. Such behavior remains elusive due to the analytical difficulty of dealing with two parallel solid boundaries. The existence of additional obstacles in quasi-two dimensional systems further complicates the analysis. Combining experiments and hydrodynamic simulations, we investigate how the spatial dimension affects the interactions between microswimmers and obstacles. We fabricated microscopic pillars in quasi-two dimensions by etching glass coverslips and observed bacterial swimming among the pillars. Bacteria got trapped around the circular pillars and the trapping efficiency increased as the quasi-two-dimensionality was increased or as the curvature of the pillars was decreased. Numerical simulations of the simplest situation of a confined squirmer showed anomalous increase of hydrodynamic attractions, establishing that the enhanced interaction is a universal property of quasi-two-dimensional microhydrodynamics. We also demonstrated that the local curvature of the obstacle controls the trapping efficiency by experiments with elliptic pillars.

摘要

微游泳者在准二维中表现出比在三维中更多样的行为。由于处理两个平行固体边界的分析难度,这种行为仍然难以捉摸。在准二维系统中存在额外的障碍物进一步增加了分析的复杂性。通过实验和流体动力学模拟相结合,我们研究了空间维度如何影响微游泳者和障碍物之间的相互作用。我们通过刻蚀玻璃盖玻片在准二维中制造了微观支柱,并观察了细菌在支柱之间的游动。细菌被困在圆形支柱周围,随着准二维度的增加或支柱曲率的减小,捕获效率增加。受限摇蚊最简单情况的数值模拟显示出流体动力吸引力的异常增加,从而确立了增强的相互作用是准二维微流体动力学的普遍特性。我们还通过椭圆支柱的实验证明了障碍物的局部曲率控制着捕获效率。

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