Thermal relaxation asymmetry persists under inertial effects

Fuente: arXiv
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Main Authors: Dieball, Cai, Godec, Aljaž
Format: Preprint
Published: 2026
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author Dieball, Cai
Godec, Aljaž
author_facet Dieball, Cai
Godec, Aljaž
contents We algebraically prove the asymmetry in thermal relaxation in phase space in the entire range from overdamped dynamics to underdamped dynamics. We show that for the same setup as for overdamped dynamics, even in the more general case of phase-space relaxation, i.e., underdamped dynamics, far-from-equilibrium heating is faster than cooling. Upon isolating the relevant relaxational contribution to the entropy production, we find that the asymmetry persist for underdamped dynamics that are linearly driven out of equilibrium. The coupling of positions and velocities emerging in this generalization further underscores, in a striking manner, the intricate dynamics of such thermal relaxation processes that do not pass through local equilibria. Investigating the overdamped limit, our generalized approach reveals, interestingly, that an excess free energy contribution from the velocity degrees of freedom does not trivially vanish in the overdamped limit, but is instead affected by the precise interpretation of temperature quenches in overdamped systems.
format Preprint
id arxiv_https___arxiv_org_abs_2603_18721
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Thermal relaxation asymmetry persists under inertial effects
Dieball, Cai
Godec, Aljaž
Statistical Mechanics
Mathematical Physics
Probability
We algebraically prove the asymmetry in thermal relaxation in phase space in the entire range from overdamped dynamics to underdamped dynamics. We show that for the same setup as for overdamped dynamics, even in the more general case of phase-space relaxation, i.e., underdamped dynamics, far-from-equilibrium heating is faster than cooling. Upon isolating the relevant relaxational contribution to the entropy production, we find that the asymmetry persist for underdamped dynamics that are linearly driven out of equilibrium. The coupling of positions and velocities emerging in this generalization further underscores, in a striking manner, the intricate dynamics of such thermal relaxation processes that do not pass through local equilibria. Investigating the overdamped limit, our generalized approach reveals, interestingly, that an excess free energy contribution from the velocity degrees of freedom does not trivially vanish in the overdamped limit, but is instead affected by the precise interpretation of temperature quenches in overdamped systems.
title Thermal relaxation asymmetry persists under inertial effects
topic Statistical Mechanics
Mathematical Physics
Probability
url https://arxiv.org/abs/2603.18721