Synthetic Quorum Sensing and Absorbing Phase Transitions in Colloidal Active Matter

Fuente: arXiv
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Main Authors: Lefranc, Thibault, Dinelli, Alberto, Fernández-Rico, Carla, Dullens, Roel P. A., Tailleur, Julien, Bartolo, Denis
Format: Preprint
Published: 2025
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author Lefranc, Thibault
Dinelli, Alberto
Fernández-Rico, Carla
Dullens, Roel P. A.
Tailleur, Julien
Bartolo, Denis
author_facet Lefranc, Thibault
Dinelli, Alberto
Fernández-Rico, Carla
Dullens, Roel P. A.
Tailleur, Julien
Bartolo, Denis
contents Unlike biological active matter that constantly adapt to their environment, the motors of synthetic active particles are typically agnostic to their surroundings and merely operate at constant force. Here, we design colloidal active rods capable of modulating their inner activity in response to crowding, thereby enforcing a primitive form of quorum sensing interactions. Through experiments, simulations, and theory we elucidate the impact of these interactions on the phase behavior of isotropic active matter. We demonstrate that, when conditioned to density, motility regulation can either lead to an absorbing phase transition, where all particles freeze their dynamics, or to atypical phase separation, where flat interfaces supporting a net pressure drop are in mechanical equilibrium. Fully active and fully arrested particles can then form heterogeneous patterns ruled by the competition between quorum sensing and mechanical interactions. Beyond the specifics of motile colloids, we expect our findings to apply broadly to adaptive active matter assembled from living or synthetic units.
format Preprint
id arxiv_https___arxiv_org_abs_2502_13919
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Synthetic Quorum Sensing and Absorbing Phase Transitions in Colloidal Active Matter
Lefranc, Thibault
Dinelli, Alberto
Fernández-Rico, Carla
Dullens, Roel P. A.
Tailleur, Julien
Bartolo, Denis
Statistical Mechanics
Soft Condensed Matter
Unlike biological active matter that constantly adapt to their environment, the motors of synthetic active particles are typically agnostic to their surroundings and merely operate at constant force. Here, we design colloidal active rods capable of modulating their inner activity in response to crowding, thereby enforcing a primitive form of quorum sensing interactions. Through experiments, simulations, and theory we elucidate the impact of these interactions on the phase behavior of isotropic active matter. We demonstrate that, when conditioned to density, motility regulation can either lead to an absorbing phase transition, where all particles freeze their dynamics, or to atypical phase separation, where flat interfaces supporting a net pressure drop are in mechanical equilibrium. Fully active and fully arrested particles can then form heterogeneous patterns ruled by the competition between quorum sensing and mechanical interactions. Beyond the specifics of motile colloids, we expect our findings to apply broadly to adaptive active matter assembled from living or synthetic units.
title Synthetic Quorum Sensing and Absorbing Phase Transitions in Colloidal Active Matter
topic Statistical Mechanics
Soft Condensed Matter
url https://arxiv.org/abs/2502.13919