4.8 Article

Disordered Collective Motion in Dense Assemblies of Persistent Particles

Journal

PHYSICAL REVIEW LETTERS
Volume 129, Issue 4, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevLett.129.048002

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Funding

  1. Simons Foundation [454935]

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We investigate the emergence of nonequilibrium collective motion in disordered nonthermal active matter using simulations. We find that polydispersity stabilizes a homogeneous active liquid characterized by remarkable velocity correlations and irregular turbulent flows. The active fluid undergoes a nonequilibrium glass transition at large density, accompanied by collective motion.
We explore the emergence of nonequilibrium collective motion in disordered nonthermal active matter when persistent motion and crowding effects compete, using simulations of a two-dimensional model of size polydisperse self-propelled particles. In stark contrast with monodisperse systems, we find that polydispersity stabilizes a homogeneous active liquid at arbitrary large persistence times, characterized by remarkable velocity correlations and irregular turbulent flows. For all persistence values, the active fluid undergoes a nonequilibrium glass transition at large density. This is accompanied by collective motion, whose nature evolves from near-equilibrium spatially heterogeneous dynamics at small persistence, to a qualitatively different intermittent dynamics when persistence is large. This latter regime involves a complex time evolution of the correlated displacement field.

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