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      Quantum thermodynamics of correlated-catalytic state conversion at small-scale

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          Abstract

          The class of possible thermodynamic conversions can be extended by introducing an auxiliary system called catalyst, which assists state conversion while remaining its own state unchanged. We reveal a complete characterization of catalytic state conversion in quantum and single-shot thermodynamics by allowing an infinitesimal correlation between the system and the catalyst. Specifically, we prove that a single thermodynamic potential, which provides the necessary and sufficient condition for the correlated-catalytic state conversion, is given by the standard nonequilibrium free energy defined with the Kullback-Leibler divergence. This resolves the conjecture raised by Wilming, Gallego, and Eisert [Entropy 19, 241 (2017)] and by Lostaglio and Muller [Phys. Rev. Lett. 123, 020403 (2019)] in positive. Moreover, we show that, with the aid of the work storage, any quantum state can be converted into another one by paying the work cost equal to the difference of the nonequilibrium free energy. Our result would serve as a step towards establishing resource theories of catalytic state conversion in the fully quantum regime.

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          Author and article information

          Journal
          21 October 2020
          Article
          2010.11036
          6fa8d653-2b35-4628-a193-95efbffd8bb3

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          Custom metadata
          15 pages, 3 figures
          quant-ph cond-mat.stat-mech

          Condensed matter,Quantum physics & Field theory
          Condensed matter, Quantum physics & Field theory

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