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Quantum thermodynamics of nanoscale steady states far from equilibrium

Nobuhiko Taniguchi
Phys. Rev. B 97, 155404 – Published 4 April 2018

Abstract

We develop an exact quantum thermodynamic description for a noninteracting nanoscale steady state that couples strongly with multiple reservoirs. We demonstrate that there exists a steady-state extension of the thermodynamic function that correctly accounts for the multiterminal Landauer-Büttiker formula of quantum transport of charge, energy, or heat via the nonequilibrium thermodynamic relations. Its explicit form is obtained for a single bosonic or fermionic level in the wide-band limit, and corresponding thermodynamic forces (affinities) are identified. Nonlinear generalization of the Onsager reciprocity relations are derived. We suggest that the steady-state thermodynamic function is also capable of characterizing the heat current fluctuations of the critical transport where the thermal fluctuations dominate. Also, the suggested nonequilibrium steady-state thermodynamic relations seemingly persist for a spin-degenerate single level with local interaction.

  • Figure
  • Received 23 May 2017
  • Revised 22 February 2018

DOI:https://doi.org/10.1103/PhysRevB.97.155404

©2018 American Physical Society

Physics Subject Headings (PhySH)

General PhysicsInterdisciplinary PhysicsCondensed Matter & Materials PhysicsQuantum InformationStatistical Physics

Authors & Affiliations

Nobuhiko Taniguchi*

  • Physics Division, Faculty of Pure and Applied Sciences, University of Tsukuba, Tennodai Tsukuba 305-8571, Japan

  • *taniguchi.n.gf@u.tsukuba.ac.jp

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Issue

Vol. 97, Iss. 15 — 15 April 2018

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