Origin of Edge Currents in Chiral Active Liquids

Fuente: arXiv
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Main Authors: Alsallom, Faisal, Limmer, David T.
Format: Preprint
Published: 2026
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author Alsallom, Faisal
Limmer, David T.
author_facet Alsallom, Faisal
Limmer, David T.
contents Chiral active liquids exhibit unidirectional edge currents when confined to simple geometries, but the origin of this phenomenon has defied explanation. Starting from the microscopic equations of motion of a simple two-dimensional model, we find that localized edge currents emerge as a consequence of global angular momentum conservation in dense systems. From these underlying equations, we derive an Ohmic-like conductance law for the mean edge current in the dense phase, and we find it to be intensive, depending only on the density, active torque and substrate drag. For simple geometries, we find the distribution of the edge currents has a closed Gaussian form, with a variance that is intensive, depending only on temperature, density and the aspect ratio of the system. These results are validated numerically using extensive molecular dynamics simulations. These results provide a new perspective for studying the collective phenomena in active matter through the global balance of conserved quantities.
format Preprint
id arxiv_https___arxiv_org_abs_2603_18159
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Origin of Edge Currents in Chiral Active Liquids
Alsallom, Faisal
Limmer, David T.
Soft Condensed Matter
Statistical Mechanics
Chiral active liquids exhibit unidirectional edge currents when confined to simple geometries, but the origin of this phenomenon has defied explanation. Starting from the microscopic equations of motion of a simple two-dimensional model, we find that localized edge currents emerge as a consequence of global angular momentum conservation in dense systems. From these underlying equations, we derive an Ohmic-like conductance law for the mean edge current in the dense phase, and we find it to be intensive, depending only on the density, active torque and substrate drag. For simple geometries, we find the distribution of the edge currents has a closed Gaussian form, with a variance that is intensive, depending only on temperature, density and the aspect ratio of the system. These results are validated numerically using extensive molecular dynamics simulations. These results provide a new perspective for studying the collective phenomena in active matter through the global balance of conserved quantities.
title Origin of Edge Currents in Chiral Active Liquids
topic Soft Condensed Matter
Statistical Mechanics
url https://arxiv.org/abs/2603.18159