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微游泳者的水动力捕获进入球约束轨道。

Hydrodynamic capture of microswimmers into sphere-bound orbits.

出版信息

Soft Matter. 2014 Mar 21;10(11):1784-9. doi: 10.1039/c3sm52815d.

Abstract

Self-propelled particles can exhibit surprising non-equilibrium behaviors, and how they interact with obstacles or boundaries remains an important open problem. Here we show that chemically propelled micro-rods can be captured, with little change in their speed, into close orbits around solid spheres resting on or near a horizontal plane. We show that this interaction between sphere and particle is short-range, occurring even for spheres smaller than the particle length, and for a variety of sphere materials. We consider a simple model, based on lubrication theory, of a force- and torque-free swimmer driven by a surface slip (the phoretic propulsion mechanism) and moving near a solid surface. The model demonstrates capture, or movement towards the surface, and yields speeds independent of distance. This study reveals the crucial aspects of activity–driven interactions of self-propelled particles with passive objects, and brings into question the use of colloidal tracers as probes of active matter.

摘要

自推进粒子可以表现出令人惊讶的非平衡行为,它们与障碍物或边界的相互作用仍然是一个重要的开放性问题。在这里,我们表明,化学推进的微棒可以被捕获,速度几乎没有变化,进入固体球的近轨道,这些球位于或靠近水平平面上。我们表明,球体和粒子之间的这种相互作用是短程的,即使对于小于粒子长度的球体,以及各种球体材料,也会发生这种相互作用。我们考虑了一个简单的模型,该模型基于无受力和无扭矩的游动器,由表面滑动(趋肤推进机制)驱动,并在固体表面附近移动。该模型演示了捕获,或朝向表面的运动,并产生与距离无关的速度。这项研究揭示了自推进粒子与被动物体之间的活性驱动相互作用的关键方面,并对使用胶体示踪剂作为活性物质探针提出了质疑。

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