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Thermodynamic bounds on coherent transport in periodically driven conductors

Potanina, Elina; Flindt, Christian; Moskalets, Michael; Brandner, Kay

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Authors

Elina Potanina

Christian Flindt

Michael Moskalets



Abstract

Periodically driven coherent conductors provide a universal platform for the development of quantum transport devices. Here, we lay down a comprehensive theory to describe the thermodynamics of these systems. We first focus on moderate thermoelectrical biases and low driving frequencies. For this linear response regime, we establish generalized Onsager-Casimir relations and an extended fluctuation-dissipation theorem. Furthermore, we derive a family of thermodynamic bounds proving that any local matter or heat current puts a nontrivial lower limit on the overall dissipation rate of a coherent transport process. These bounds do not depend on system-specific parameters, are robust against dephasing, and involve only experimentally accessible quantities. They thus provide powerful tools to optimize the performance of mesoscopic devices and for thermodynamic inference, as we demonstrate by working out three specific applications. We then show that physically transparent extensions of our bounds hold also for strong biases and high frequencies. These generalized bounds imply a thermodynamic uncertainty relation that fully accounts for quantum effects and periodic driving. Moreover, they lead to a universal and operationally accessible bound on entropy production that can be readily used for thermodynamic inference and device engineering far from equilibrium. Connecting a broad variety of topics that range from thermodynamic geometry over thermodynamic uncertainty relations to quantum engineering, our work provides a unifying thermodynamic theory of coherent transport that can be tested and utilized with current technologies.

Citation

Potanina, E., Flindt, C., Moskalets, M., & Brandner, K. (2021). Thermodynamic bounds on coherent transport in periodically driven conductors. Physical Review X, 11(2), 1-26. https://doi.org/10.1103/physrevx.11.021013

Journal Article Type Article
Acceptance Date Feb 25, 2021
Online Publication Date Apr 14, 2021
Publication Date 2021-04
Deposit Date Jun 1, 2021
Publicly Available Date Jun 1, 2021
Journal Physical Review X
Electronic ISSN 2160-3308
Publisher American Physical Society
Peer Reviewed Peer Reviewed
Volume 11
Issue 2
Article Number 021013
Pages 1-26
DOI https://doi.org/10.1103/physrevx.11.021013
Keywords General Physics and Astronomy
Public URL https://nottingham-repository.worktribe.com/output/5621010
Publisher URL https://journals.aps.org/prx/abstract/10.1103/PhysRevX.11.021013

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