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January 29, 2020Physical Review Letters126 citationsOpen Access

Thermodynamic Geometry of Microscopic Heat Engines

KBKay BrandnerKSKeiji Saito

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Abstract

We develop a general framework to describe the thermodynamics of microscopic heat engines driven by arbitrary periodic temperature variations and modulations of a mechanical control parameter. Within the slow-driving regime, our approach leads to a universal trade-off relation between efficiency and power, which follows solely from geometric arguments and holds for any thermodynamically consistent microdynamics. Focusing on Lindblad dynamics, we derive a second bound showing that coherence as a genuine quantum effect inevitably reduces the performance of slow engine cycles regardless of the driving amplitudes. To show how our theory can be applied in practice, we work out a specific example, which lies within the range of current solid-state technologies.

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Brandner et al. (2020) studied this question.

synapsesocial.com/papers/6a17e2bccf02a40e68b446e3https://doi.org/10.1103/physrevlett.124.040602
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