2022-04-05T17:34:41Z
2022-04-05T17:34:41Z
2021-01-07
2022-04-05T17:34:41Z
We present a comprehensive study about the relationship between the way Detailed Balance is broken in non-equilibrium systems and the resulting violations of the Fluctuation-Dissipation Theorem. Starting from stochastic dynamics with both odd and even variables under Time-Reversal, we exploit the relation between entropy production and the breakdown of Detailed Balance to establish general constraints on the non-equilibrium steady-states (NESS), which relate the non-equilibrium character of the dynamics with symmetry properties of the NESS distribution. This provides a direct route to derive extended Fluctuation-Dissipation Relations, expressing the linear response function in terms of NESS correlations. Such framework provides a unified way to understand the departure from equilibrium of active systems and its linear response. We then consider two paradigmatic models of interacting self-propelled particles, namely Active Brownian Particles (ABP) and Active Ornstein-Uhlenbeck Particles (AOUP). We analyze the non-equilibrium character of these systems (also within a Markov and a Chapman-Enskog approximation) and derive extended Fluctuation-Dissipation Relations for them, clarifying which features of these active model systems are genuinely non-equilibrium.
Article
Accepted version
English
Fluctuacions (Física); Matèria condensada tova; Mecànica estadística; Fluctuations (Physics); Soft condensed matter; Statistical mechanics
International School for Advanced Studies (SISSA) and IOP Publishing (IOP)
Versió postprint del document publicat a: https://doi.org/10.1088/1742-5468/abee22
Journal of Statistical Mechanics: Theory and Experiment, 2021, vol. 4, p. 043201
https://doi.org/10.1088/1742-5468/abee22
info:eu-repo/grantAgreement/EC/H2020/674979/EU//NANOTRANS
(c) IOP Publishing Ltd and SISSA Medialab srl, 2021