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When are active Brownian particles and run-and-tumble particles equivalent? Consequences for motility-induced phase separation

Europhysics Letters (EPL) · 2013 · Vol. 101(2) · pp. 20010–20010
M. E. CatesJulien Tailleur

Abstract

Active Brownian particles (ABPs, such as self-phoretic colloids) swim at fixed speed $v$ along a body-axis ${\bf u}$ 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 $\rho$ but not on ${\bf u}$, 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 $v(\rho)$ causes phase separation in dimensions $d=2,3$, 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.

Micro and Nano RoboticsPickering emulsions and particle stabilizationMolecular Communication and NanonetworksBrownian motionMotilityActive matterColloidal particleBrownian dynamicsDiffusionPhase (matter)PhysicsFick's laws of diffusionMechanics

Funding

  • Engineering and Physical Sciences Research Council
Citations
490
FWCI
30.67
field-weighted impact
References
46
Percentile
100%
vs. same field & year
Citations per year
Cited by
Active Particles in Complex and Crowded Environments
Reviews of Modern Physics · 2016 · 2,833 citations
References
Designing phoretic micro- and nano-swimmers
New Journal of Physics · 2007 · 624 citations
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