Crowding induced clustering under confinement
Remy Kusters, Cornelis Storm

TL;DR
This paper uses Langevin dynamics simulations to study how driven particles in dense passive backgrounds form clusters under certain conditions, revealing mechanisms of phase separation and potential applications like colloidal separation.
Contribution
It introduces a simulation-based analysis of clustering phenomena in driven particles under confinement, identifying critical conditions and mechanisms of phase separation.
Findings
Driven particles form tight clusters depending on force and density.
A jammed zone develops in front of clusters, influencing growth.
Clustering affects transport efficiency and can be used for particle separation.
Abstract
We present Langevin dynamics simulations that study the collective behavior of driven particles embedded in a densely packed background consisting of passive particles. Depending on the driving force, the densities of driven and passive particles, and the temperature we observe a dynamical phase separation of the driven particles, which cluster together in tight bands. We explore the mechanisms that drive this cluster formation, and determine the critical conditions for such phase separation. A simple physical picture explains the formation and subsequent growth of a jammed zone developing in front of the driven cluster. The model correctly captures the observed scaling with time. We analyze the implications of this clustering transition for the driven transport in dense particulate flows, which due to a non-monotonic dependence on the applied driving force is not straightforwardly…
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Taxonomy
TopicsDiffusion and Search Dynamics · Material Dynamics and Properties · Ecosystem dynamics and resilience
