Friction and noise for a probe in a nonequilibrium fluid
arXiv:1410.5933 · doi:10.1103/PhysRevE.91.022128
Abstract
We investigate the fluctuation dynamics of a probe around a deterministic motion induced by interactions with driven particles. The latter constitute the nonequilibrium medium in which the probe is immersed and is modelled as overdamped Langevin particle dynamics driven by nonconservative forces. The expansion that yields the friction and noise expressions for the reduced probe dynamics is based on linear response around a time dependent nonequilibrium condition of the medium. The result contains an extension of the second fluctuation dissipation relation between friction and noise for probe motion in a nonequilibrium fluid
References in corpus (6)
- Diffusive transport without detailed balance in motile bacteria: Does microbiology need statistical physics?
- An update on nonequilibrium linear response
- Non-Gaussian statistics for the motion of self-propelled Janus particles: experiment versus theory
- The frenetic origin of negative differential response
- On the second fluctuation--dissipation theorem for nonequilibrium baths
- Nonequilibrium Brownian motion beyond the effective temperature
Cited by in corpus (34)
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