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Engineered swift equilibration of a Brownian gyrator

Academic Article
Publication Date:
2020
abstract:
In the context of stochastic thermodynamics, a minimal model for nonequilibrium steady states has been recently proposed: the Brownian gyrator (BG). It describes the stochastic overdamped motion of a particle in a two-dimensional harmonic potential, as in the classic Ornstein-Uhlenbeck process, but considering the simultaneous presence of two independent thermal baths. When the two baths have different temperatures, the steady BG exhibits a rotating current, a clear signature of nonequilibrium dynamics. Here, we consider a time-dependent potential, and we apply a reverse-engineering approach to derive exactly the required protocol to switch from an initial steady state to a final steady state in a finite time ?. The protocol can be built by first choosing an arbitrary quasistatic counterpart, with few constraints, and then adding a finite-time contribution which only depends upon the chosen quasistatic form and which is of order 1/?. We also get a condition for transformations which, in finite time, conserve internal energy, useful for applications such as the design of microscopic thermal engines. Our study extends finite-time stochastic thermodynamics to transformations connecting nonequilibrium steady states.
Iris type:
01.01 Articolo in rivista
Keywords:
Gyrators; Reverse engineering; Stochastic models; Thermodynamics
List of contributors:
Puglisi, Andrea; Baldassarri, Andrea
Authors of the University:
BALDASSARRI ANDREA
PUGLISI ANDREA
Handle:
https://iris.cnr.it/handle/20.500.14243/383512
Published in:
PHYSICAL REVIEW. E (ONLINE)
Journal
  • Overview

Overview

URL

https://journals.aps.org/pre/abstract/10.1103/PhysRevE.102.030105
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