Inverted Sedimentation of Active Particles in Unbiased ac Fields
arXiv:2211.13686 · doi:10.1103/PhysRevLett.131.038201
Abstract
Gaining control over the motion of active particles is crucial for applications ranging from targeted cargo delivery to nanomedicine. While much progress has been made recently to control active motion based on external forces, flows or gradients in concentration or light intensity, which all have a well-defined direction or bias, little is known about how to steer active particles in situations where no permanent bias can be realized. Here, we show that ac fields with a vanishing time average provide an alternative route to steering active particles. We exemplify this route for inertial active particles in a gravitational field, observing that a substantial fraction of them persistently travels in the upward direction upon switching on the ac field, resulting in an inverted sedimentation profile at the top wall of a confining container. Our results offer a generic control principle which could be used in the future to steer active motion, to direct collective behaviors and to purify mixtures.
References in corpus (13)
- Self-motile colloidal particles: from directed propulsion to random walk
- Physics of Microswimmers - Single Particle Motion and Collective Behavior
- Self-propulsion of pure water droplets by spontaneous Marangoni stress driven motion
- Phototaxis of synthetic microswimmers in optical landscapes
- Gravitaxis of asymmetric self-propelled colloidal particles
- Inertial effects of self-propelled particles: from active Brownian to active Langevin motion
- Tuning the motility and directionality of self-propelled colloids
- Multiscale modeling of oscillations and spiral waves in Dictyostelium populations
- Rechargeable self-assembled droplet microswimmers driven by surface phase transitions
- Active Colloids in Harmonic Optical Potentials
- Guiding self-assembly of active colloids by temporal modulation of activity
- Acoustic propulsion of a small bottom-heavy sphere
- Magnetized granular particles running and tumbling on