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Attaining Carnot efficiency with quantum and nanoscale heat engines

Physics

Attaining Carnot efficiency with quantum and nanoscale heat engines

M. L. Bera, M. Lewenstein, et al.

Discover groundbreaking work by Mohit Lal Bera, Maciej Lewenstein, and Manabendra Nath Bera as they unveil quantum and nanoscale heat engines achieving Carnot efficiency in the finite-size regime, surpassing previous designs and utilizing inter-system correlations.... show more
Abstract
A heat engine operating in the one-shot finite-size regime, where systems composed of a small number of quantum particles interact with hot and cold baths and are restricted to one-shot measurements, delivers fluctuating work. Further, engines with lesser fluctuation produce a lesser amount of deterministic work. Hence, the heat-to-work conversion efficiency stays well below the Carnot efficiency. Here we overcome this limitation and attain Carnot efficiency in the one-shot finite-size regime, where the engines allow the working systems to simultaneously interact with two baths via the semi-local thermal operations and reversibly operate in a one-step cycle. These engines are superior to the ones considered earlier in work extraction efficiency, and, even, are capable of converting heat into work by exclusively utilizing inter-system correlations. We formulate a resource theory for quantum heat engines to prove the results.
Publisher
npj Quantum Information
Published On
Feb 12, 2021
Authors
Mohit Lal Bera, Maciej Lewenstein, Manabendra Nath Bera
Tags
quantum heat engines
nanoscale
Carnot efficiency
finite-size regime
work extraction
thermal operations
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