Irreversibility in active matter systems: Fluctuation theorem and mutual information
Lennart Dabelow, Stefano Bo, Ralf Eichhorn

TL;DR
This paper explores how active matter systems exhibit irreversibility through a fluctuation theorem involving entropy and mutual information, extending understanding of non-equilibrium thermodynamics in active environments.
Contribution
It introduces a new irreversibility measure for active matter that includes mutual information, and derives fluctuation relations for systems driven by active fluctuations.
Findings
Irreversibility includes mutual information contributions.
Derived fluctuation theorem for active matter systems.
Explicit expressions for active fluctuations modeled by Ornstein-Uhlenbeck process.
Abstract
We consider a Brownian particle which, in addition to being in contact with a thermal bath, is driven by fluctuating forces which stem from active processes in the system, such as self-propulsion or collisions with other active particles. These active fluctuations do not fulfill a fluctuation-dissipation relation and therefore play the role of a non-equilibrium environment, which keeps the system permanently out of thermal equilibrium even in the absence of external forces. We investigate how the out-of-equilibrium character of the active matter system and the associated irreversibility is reflected in the trajectories of the Brownian particle. Specifically, we analyze the log-ratio of path probabilities for observing a certain particle trajectory forward in time versus observing its time-reversed twin trajectory. For passive Brownian motion, it is well-known that this path probability…
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