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Entropy current and efficiency of quantum machines driven by nonequilibrium incoherent reservoirs

Sebastián E. Deghi, Raúl A. Bustos-Marún

2020Physical review. B./Physical review. B18 citationsDOIOpen Access PDF

Abstract

Nanotechnology has not only provided us the possibility of developing quantum machines but also noncanonical power sources able to drive them. Here we focus on studying the performance of quantum machines driven by arbitrary combinations of equilibrium reservoirs and a form of engineered reservoirs consisting of noninteracting particles but whose distribution functions are nonthermal. We provide the expressions for calculating the maximum efficiency of those machines without needing any knowledge of how the nonequilibrium reservoirs were actually made. The formulas require the calculation of a quantity that we term entropy current, which we also derive. We illustrate our methodology through a solvable toy model where heat ``spontaneously'' flows against the temperature gradient.

Topics & Concepts

Non-equilibrium thermodynamicsStatistical physicsQuantumEntropy (arrow of time)Principle of maximum entropyFocus (optics)Computer sciencePhysicsQuantum mechanicsArtificial intelligenceOpticsAdvanced Thermodynamics and Statistical MechanicsQuantum Information and Cryptographystochastic dynamics and bifurcation
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