Effects of the non-Markovianity and non-Gaussianity of active environmental noises on engine performance
arXiv:2110.01841 · doi:10.1103/PhysRevE.105.024130
Abstract
An active environment is a reservoir containing \emph{active} materials, such as bacteria and Janus particles. Given the self-propelled motion of these materials, powered by chemical energy, an active environment has unique, nonequilibrium environmental noise. Recently, studies on engines that harvest energy from active environments have attracted a great deal of attention because the theoretical and experimental findings indicate that these engines outperform conventional ones. Studies have explored the features of active environments essential for outperformance, such as the non-Gaussian or non-Markovian nature of the active noise. However, these features have not yet been systematically investigated in a general setting. Therefore, we systematically study the effects of the non-Gaussianity and non-Markovianity of active noise on engine performance. We show that non-Gaussianity is irrelevant to the performance of an engine driven by {any linear force (including a harmonic trap) regardless of time dependency}, whereas non-Markovianity is relevant. However, for a system driven by a general nonlinear force, both non-Gaussianity and non-Markovianity enhance engine performance. Also, the memory effect of an active reservoir should be considered when fabricating a cyclic engine.
16 pages
References in corpus (13)
- Thermodynamic uncertainty relation for biomolecular processes
- Effective Interactions in Active Brownian Suspensions
- Self-Starting Micromotors in a Bacterial Bath
- Generalized energy equipartition in harmonic oscillators driven by active baths
- Thermodynamic uncertainty relation for time-dependent driving
- The Brownian gyrator: a minimal heat engine on the nano-scale
- Active Brownian Heat Engines
- Active engines: Thermodynamics moves forward
- Fluctuation Relation for Heat
- Brownian heat engine with active reservoirs
- Rapid-Prototyping a Brownian Particle in an Active Bath
- Universal form of thermodynamic uncertainty relation for Langevin dynamics
- Tuning the performance of a micrometer-sized Stirling engine through reservoir engineering
Cited by in corpus (8)
- A Brownian cyclic engine operating in a viscoelastic active suspension
- Periodic potential can enormously boost free particle transport induced by active fluctuations
- Exactly solvable model of a passive Brownian heat engine and its comparison with active engines
- Mechanism for giant enhancement of transport induced by active fluctuations
- Modeling the Efficiency and Effective Temperature of Bacterial Heat Engines
- Active particles in moving traps: minimum work protocols and information efficiency of work extraction
- A stochastic Stirling engine powered by an active particle
- Memory-aware feedback enhances power in active information engines