Self propelled particle transport in regular arrays of rigid asymmetric obstacles
arXiv:1407.1718 · doi:10.1103/PhysRevE.90.012307
Abstract
We report numerical results which show the achievement of net transport of self-propelled particles (SPP) in the presence of a two-dimensional regular array of convex, either symmetric or asymmetric, rigid obstacles. The repulsive inter-particle (soft disks) and particle-obstacle interactions present no alignment rule. We find that SPP present a vortex-type motion around convex symmetric obstacles even in the absence of hydrodynamic effects. Such a motion is not observed for a single SPP, but is a consequence of the collective motion of SPP around the obstacles. An steady particle current is spontaneously established in an array of non-symmetric convex obstacle (which presents no cavity in which particles may be trapped in), and in the absence of an external field. Our results are mainly a consequence of the tendency of the self-propelled particles to attach to solid surfaces.
5 pages, 3 figuras, accepted for publication in Phys. Rev. E
References in corpus (7)
- Novel type of phase transition in a system of self-driven particles
- Diffusive transport without detailed balance in motile bacteria: Does microbiology need statistical physics?
- Sedimentation, trapping, and rectification of dilute bacteria
- Minimal model for active nematics: quasi-long-range order and giant fluctuations
- Self-Starting Micromotors in a Bacterial Bath
- Enhanced diffusion and ordering of self-propelled rods
- Rectification of Swimming Bacteria and Self Driven Particle Systems by Arrays of Asymmetric Barriers
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