Microscopic theory for the phase separation of self-propelled repulsive disks
Abstract
Motivated by recent experiments on colloidal suspensions, we study analytically and numerically a microscopic model for self-propelled particles lacking alignment interactions. In this model, even for purely repulsive interactions, a dynamical instability leading to phase separation has been reported. Starting from the many-body Smoluchowski equation, we develop a mean-field description based on a novel closure scheme and derive the effective hydrodynamic equations. We demonstrate that the microscopic origin of the instability is a force imbalance due to an anisotropic pair distribution leading to self-trapping. The phase diagram can be understood in terms of two quantities: a minimal drive and the force imbalance. At sufficiently high propulsion speeds there is a reentrance into the disordered fluid.
Keywords
Cite
@article{arxiv.1307.4908,
title = {Microscopic theory for the phase separation of self-propelled repulsive disks},
author = {Julian Bialké and Hartmut Löwen and Thomas Speck},
journal= {arXiv preprint arXiv:1307.4908},
year = {2013}
}