Coherences and the thermodynamic uncertainty relation: Insights from quantum absorption refrigerators

Junjie Liu and Dvira Segal
Phys. Rev. E 103, 032138 – Published 22 March 2021

Abstract

The thermodynamic uncertainty relation, originally derived for classical Markov-jump processes, provides a tradeoff relation between precision and dissipation, deepening our understanding of the performance of quantum thermal machines. Here, we examine the interplay of quantum system coherences and heat current fluctuations on the validity of the thermodynamics uncertainty relation in the quantum regime. To achieve the current statistics, we perform a full counting statistics simulation of the Redfield quantum master equation. We focus on steady-state quantum absorption refrigerators where nonzero coherence between eigenstates can either suppress or enhance the cooling power, compared with the incoherent limit. In either scenario, we find enhanced relative noise of the cooling power (standard deviation of the power over the mean) in the presence of system coherence, thereby corroborating the thermodynamic uncertainty relation. Our results indicate that fluctuations necessitate consideration when assessing the performance of quantum coherent thermal machines.

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  • Received 1 December 2020
  • Accepted 4 March 2021

DOI:https://doi.org/10.1103/PhysRevE.103.032138

©2021 American Physical Society

Physics Subject Headings (PhySH)

Statistical Physics & Thermodynamics

Authors & Affiliations

Junjie Liu1 and Dvira Segal1,2

  • 1Department of Chemistry and Centre for Quantum Information and Quantum Control, University of Toronto, 80 Saint George Street, Toronto, Ontario, M5S 3H6, Canada
  • 2Department of Physics, 60 Saint George Street, University of Toronto, Toronto, Ontario, Canada M5S 1A7

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Vol. 103, Iss. 3 — March 2021

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