When are active Brownian particles and run-and-tumble particles equivalent? Consequences for motility-induced phase separation
arXiv:1206.1805 · doi:10.1209/0295-5075/101/20010
Abstract
Active Brownian particles (ABPs, such as self-phoretic colloids) swim at fixed speed along a body-axis that rotates by slow angular diffusion. Run-and-tumble particles (RTPs, such as motile bacteria) swim with constant $\u$ until a random tumble event suddenly decorrelates the orientation. We show that when the motility parameters depend on density but not on , the coarse-grained fluctuating hydrodynamics of interacting ABPs and RTPs can be mapped onto each other and are thus strictly equivalent. In both cases, a steeply enough decreasing causes phase separation in dimensions , even when no attractive forces act between the particles. This points to a generic role for motility-induced phase separation in active matter. However, we show that the ABP/RTP equivalence does not automatically extend to the more general case of $\u$-dependent motilities.
References in corpus (11)
- Self-motile colloidal particles: from directed propulsion to random walk
- Statistical Mechanics of Interacting Run-and-Tumble Bacteria
- Designing phoretic micro- and nano-swimmers
- Diffusive transport without detailed balance in motile bacteria: Does microbiology need statistical physics?
- Non-equilibrium clustering of self-propelled rods
- Hydrodynamic equations for self-propelled particles: microscopic derivation and stability analysis
- Sedimentation, trapping, and rectification of dilute bacteria
- Pattern formation in self-propelled particles with density-dependent motility
- Self-propelled particles with fluctuating speed and direction of motion
- Run-and-tumble particles with hydrodynamics: sedimentation, trapping and upstream swimming
- Dynamic regimes of hydrodynamically coupled self-propelling particles