condensed matter physics

Bulk and microphase separation in chiral active systems

arXiv:2607.12045

summary

The paper investigates how chirality in active particle systems influences phase separation, revealing bulk and microphase separation regimes, chiral vapor bubbles, and traveling waves at interfaces without fluid flow.

Abstract

Many active particles phase-separate due to quorum-sensing interactions, and their self-propulsion mechanisms often break chiral symmetry. Using particle and continuum models, we uncover the role of chirality in inducing bulk or microphase separation, including a chiral phase formed of vapor bubbles. Analytical predictions for the emergence of these phases require a coarse-graining technique based on multiple-scale analysis. Further, introducing a minimal active field theory, we show that, in the bulk phase separation regime, chirality does not alter the diffusive coarsening law nor the dynamical exponent associated with capillary waves, but induces traveling waves at the interface. We finally demonstrate that, even in the absence of fluid flows, chirality can cause the breakup of elongated droplets, resembling phenomena previously observed experimentally.

9 pages, 5 figures

Topics & keywords

#active matter#chirality#phase separation#microphase separation#coarsening dynamicsquorum-sensing interactionsmultiple-scale analysisdiffusive t^{1/3} coarseningcapillary wavestraveling interface waves
Bulk and microphase separation in chiral active systems · wovepaper