Arrested phase separation and chiral symmetry breaking in active dumbbells under shear

Fuente: arXiv
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Main Authors: Carenza, Lucio Mauro, Negro, Giuseppe, Digregorio, Pasquale, Suma, Antonio, Gonnella, Giuseppe
Format: Preprint
Published: 2025
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author Carenza, Lucio Mauro
Negro, Giuseppe
Digregorio, Pasquale
Suma, Antonio
Gonnella, Giuseppe
author_facet Carenza, Lucio Mauro
Negro, Giuseppe
Digregorio, Pasquale
Suma, Antonio
Gonnella, Giuseppe
contents Through molecular dynamics simulations, we investigate the phase separation and aggregation dynamics of active dumbbell particles in two-dimensions subjected to shear. We find that the growth of the phase-separated region is arrested when shear is applied, with the average clusters size plateauing towards a value $R_s$ that remains constant over time. While activity enhances the resilience of clusters against shear-induced breakup, $R_s$ decreases with growing shear rate $\dotγ$, with an intermediate regime where $R_s\propto \dotγ^{-1}$. We find that clusters in the stationary state are progressively less polarized and increasingly elongated with increasing shear. At the same time, we find a breaking in chiral symmetry of both rotation direction and internal organization of clusters: typically, dumbbells point towards the cluster center with a small non-zero angle, such that the active torque opposes the shear torque, with cluster's angular velocity well captured by a simplified analytical model. We argue this conformation makes clusters more stable against shear.
format Preprint
id arxiv_https___arxiv_org_abs_2509_17229
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Arrested phase separation and chiral symmetry breaking in active dumbbells under shear
Carenza, Lucio Mauro
Negro, Giuseppe
Digregorio, Pasquale
Suma, Antonio
Gonnella, Giuseppe
Soft Condensed Matter
Through molecular dynamics simulations, we investigate the phase separation and aggregation dynamics of active dumbbell particles in two-dimensions subjected to shear. We find that the growth of the phase-separated region is arrested when shear is applied, with the average clusters size plateauing towards a value $R_s$ that remains constant over time. While activity enhances the resilience of clusters against shear-induced breakup, $R_s$ decreases with growing shear rate $\dotγ$, with an intermediate regime where $R_s\propto \dotγ^{-1}$. We find that clusters in the stationary state are progressively less polarized and increasingly elongated with increasing shear. At the same time, we find a breaking in chiral symmetry of both rotation direction and internal organization of clusters: typically, dumbbells point towards the cluster center with a small non-zero angle, such that the active torque opposes the shear torque, with cluster's angular velocity well captured by a simplified analytical model. We argue this conformation makes clusters more stable against shear.
title Arrested phase separation and chiral symmetry breaking in active dumbbells under shear
topic Soft Condensed Matter
url https://arxiv.org/abs/2509.17229