Density-independent transient caging in the high-density phase of motility-induced phase separation.

Umemura, Toranosuke; Sakai, Issei; Akimoto, Takuma · Phys Rev E · 2026

basic_science · Level V

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Abstract

We investigate the nonequilibrium dynamics of active matter using a two-dimensional active Brownian particles model. In these systems, self-propelled particles undergo motility-induced phase separation (MIPS), spontaneously segregating into dense and dilute phases. We find that in the high-density phase, local particle mobility exhibits transient caging, with diffusivity remaining unchanged despite variations in the global system density. As global density increases further, the system undergoes a transition to a solidlike state through an intermediate regime with pronounced dynamical arrest. Our findings identify a distinct high-density regime characterized by transient caging and dynamical slowing down in a monodisperse active system, shedding light on the connection between MIPS and nonequilibrium arrest.