Motile topological defects hinder dynamical arrest in dense liquids of active ellipsoids
arXiv:2203.12450 · doi:10.1103/PhysRevLett.128.178002
Abstract
Recent numerical studies have identified the persistence time of active motion as a critical parameter governing glassy dynamics in dense active matter. Here we studied dynamics in liquids of granular active ellipsoids with tunable persistence and velocity. We show that increasing the persistence time at moderate supercooling is equivalent to increasing the strength of attraction in equilibrium liquids and results in reentrant dynamics not just in the translational degrees of freedom, as anticipated, but also in the orientational ones. However, at high densities, motile topological defects, unique to active liquids of elongated particles, hindered dynamical arrest. Most remarkably, for the highest activity, we observed intermittent dynamics due to the jamming-unjamming of these defects for the first time.
16 pages. 4 figures. Accepted for publication in Physical Review Letters: https://journals.aps.org/prl/accepted/2507cY50Ya51067df1173e754358a2136785910b0
References in corpus (10)
- Motility-Induced Phase Separation
- Swarming and swirling in self-propelled polar granular rods
- Defect dynamics in active nematics
- Nonequilibrium equation of state in suspensions of active colloids
- Glassy dynamics of athermal self-propelled particles: Computer simulations and a nonequilibrium microscopic theory
- Clustering and heterogeneous dynamics in a kinetic Monte-Carlo model of self-propelled hard disks
- How active forces influence nonequilibrium glass transitions
- Mode-Coupling Theory for Active Brownian Particles
- Interparticle torques suppress motility-induced phase separation for rodlike particles
- Active dry granular flows: rheology and rigidity transitions