Self-Sustained Density Oscillations of Swimming Bacteria Confined in Microchambers
arXiv:1412.1131 · doi:10.1103/PhysRevLett.115.188303
Abstract
We numerically study the dynamics of run-and-tumble particles confined in two chambers connected by thin channels. Two dominant dynamical behaviors emerge: (i) an oscillatory pumping state, in which particles periodically fill the two vessels and (ii) a circulating flow state, dynamically maintaining a near constant population level in the containers when connected by two channels. We demonstrate that the oscillatory behaviour arises from the combination of a narrow channel, preventing bacteria reorientation, and a density dependent motility inside the chambers.
References in corpus (7)
- Spontaneous motion in hierarchically assembled active matter
- Statistical Mechanics of Interacting Run-and-Tumble Bacteria
- Diffusive transport without detailed balance in motile bacteria: Does microbiology need statistical physics?
- Self-Starting Micromotors in a Bacterial Bath
- Rectification of Swimming Bacteria and Self Driven Particle Systems by Arrays of Asymmetric Barriers
- Modelling cytoskeletal traffic: an interplay between passive diffusion and active transport
- Active Brownian Particles Escaping a Channel in Single File
Cited by in corpus (11)
- Activated escape of a self-propelled particle from a metastable state
- Shape and Displacement Fluctuations in Soft Vesicles Filled by Active Particles
- Active matter logic for autonomous microfluidics
- Model microswimmers in channels with varying cross section
- Stochastic cycle selection in active flow networks
- Narrow-escape time and sorting of active particles in circular domains
- Fractal aggregation of active particles
- Microorganism Billiards
- Phase separation of active Brownian particles on curved surfaces
- Mode selection in compressible active flow networks
- Temporal oscillations of light transmission through dielectric microparticles subjected to optically induced motion