Disorder-Induced Long-Ranged Correlations in Scalar Active Matter
Abstract
We study the impact of a random quenched potentials and torques on scalar active matter. Microscopic simulations reveal that motility-induced phase separation is replaced in two-dimensions by an asymptotically homogeneous phase with anomalous long-ranged correlations and non-vanishing steady-state currents. Using a combination of phenomenological models and a field-theoretical treatment, we show the existence of a lower-critical dimension, , below which phase separation is only observed for systems smaller than an Imry-Ma length-scale. We identify a weak-disorder regime in which the structure factor scales as which accounts for our numerics. In we predict that, at larger scales, the behaviour should cross over to a strong-disorder regime. In , these two regimes exist separately, depending on the strength of the potential.
Cite
@article{arxiv.2007.12670,
title = {Disorder-Induced Long-Ranged Correlations in Scalar Active Matter},
author = {Sunghan Ro and Yariv Kafri and Mehran Kardar and Julien Tailleur},
journal= {arXiv preprint arXiv:2007.12670},
year = {2021}
}
Comments
14 pages, 8 figures