Hydrodynamic capture of microswimmers into sphere-bound orbits
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.
Cite
@article{arxiv.1309.5662,
title = {Hydrodynamic capture of microswimmers into sphere-bound orbits},
author = {Daisuke Takagi and Jeremie Palacci and Adam B. Braunschweig and Michael J. Shelley and Jun Zhang},
journal= {arXiv preprint arXiv:1309.5662},
year = {2014}
}
Comments
5 pages, 5 figures