Exceptions to the Ratchet Principle in active and passive stochastic dynamics

Fuente: arXiv
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Main Authors: Metzger, Jessica, Ro, Sunghan, Tailleur, Julien
Format: Preprint
Published: 2025
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author Metzger, Jessica
Ro, Sunghan
Tailleur, Julien
author_facet Metzger, Jessica
Ro, Sunghan
Tailleur, Julien
contents The "ratchet principle" asserts that non-equilibrium systems which violate parity symmetry generically exhibit steady-state currents. As recently shown, there are exceptions to this principle, due to the existence of hidden time-reversal symmetry or bulk momentum conservation. For underdamped and overdamped Brownian dynamics, we show how thermal fluctuations cannot power the momentum sources required to sustain steady ratchet currents, even when time-reversal symmetry is broken due to an inhomogeneous temperature field. While Active Brownian and Run-and-Tumble particles display interaction-induced ratchet currents in asymmetric activity landscapes, we show that this is not the case for Active Ornstein-Uhlenbeck particles: not all inhomogeneous active fluctuations lead to net momentum sources. For each of the systems considered in this article, we numerically test for the emergence of interaction-induced ratchet currents. We then characterize time-reversal (a)symmetry in position space using a combination of path-integral and operator methods. When the existence of effective momentum conservation is ruled out, we develop perturbation theories to characterize the onset of interaction-induced currents.
format Preprint
id arxiv_https___arxiv_org_abs_2503_11902
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Exceptions to the Ratchet Principle in active and passive stochastic dynamics
Metzger, Jessica
Ro, Sunghan
Tailleur, Julien
Statistical Mechanics
Soft Condensed Matter
The "ratchet principle" asserts that non-equilibrium systems which violate parity symmetry generically exhibit steady-state currents. As recently shown, there are exceptions to this principle, due to the existence of hidden time-reversal symmetry or bulk momentum conservation. For underdamped and overdamped Brownian dynamics, we show how thermal fluctuations cannot power the momentum sources required to sustain steady ratchet currents, even when time-reversal symmetry is broken due to an inhomogeneous temperature field. While Active Brownian and Run-and-Tumble particles display interaction-induced ratchet currents in asymmetric activity landscapes, we show that this is not the case for Active Ornstein-Uhlenbeck particles: not all inhomogeneous active fluctuations lead to net momentum sources. For each of the systems considered in this article, we numerically test for the emergence of interaction-induced ratchet currents. We then characterize time-reversal (a)symmetry in position space using a combination of path-integral and operator methods. When the existence of effective momentum conservation is ruled out, we develop perturbation theories to characterize the onset of interaction-induced currents.
title Exceptions to the Ratchet Principle in active and passive stochastic dynamics
topic Statistical Mechanics
Soft Condensed Matter
url https://arxiv.org/abs/2503.11902