Information engine in a nonequilibrium bath
arXiv:2208.00288 · doi:10.1103/PhysRevLett.131.057101
Abstract
Information engines can convert thermal fluctuations of a bath at temperature into work at rates of order per relaxation time of the system. We show experimentally that such engines, when in contact with a bath that is out of equilibrium, can extract much more work. We place a heavy, micron-scale bead in a harmonic potential that ratchets up to capture favorable fluctuations. Adding a fluctuating electric field increases work extraction up to ten times, limited only by the strength of applied field. Our results connect Maxwell's demon with energy harvesting and an estimate of efficiency shows that information engines in nonequilibrium baths can greatly outperform conventional engines.
14 pages, 9 figures
References in corpus (16)
- Physics of Microswimmers - Single Particle Motion and Collective Behavior
- Induced-Charge Electro-Osmosis
- A self-propelled particle in an external potential: is there an effective temperature?
- A fluidized granular medium as an instance of the Fluctuation Theorem
- Second-law-like inequalities with information and their interpretations
- Entropy production of active particles and for particles in active baths
- Large work extraction and the Landauer limit in a continuous Maxwell demon
- Realization of a feedback controlled flashing ratchet
- Brownian ratchet in a thermal bath driven by Coulomb friction
- Efficiency of a Brownian information machine
- Irreversibility in active matter: General framework for active Ornstein-Uhlenbeck particles
- Szilard engines and information-based work extraction for active systems
- Bayesian information engine that optimally exploits noisy measurements
- Colossal power extraction from active cyclic Brownian information engines
- Maximal fluctuation exploitation in Gaussian information engines
- Energetic cost of feedback control
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