Finding the quantum thermoelectric with maximal efficiency and minimal entropy production at given power output

Robert S. Whitney
Phys. Rev. B 91, 115425 – Published 19 March 2015

Abstract

We investigate the nonlinear scattering theory for quantum systems with strong Seebeck and Peltier effects, and consider their use as heat engines and refrigerators with finite power outputs. This paper gives detailed derivations of the results summarized in a previous paper [R. S. Whitney, Phys. Rev. Lett. 112, 130601 (2014)]. It shows how to use the scattering theory to find (i) the quantum thermoelectric with maximum possible power output, and (ii) the quantum thermoelectric with maximum efficiency at given power output. The latter corresponds to a minimal entropy production at that power output. These quantities are of quantum origin since they depend on system size over electronic wavelength, and so have no analog in classical thermodynamics. The maximal efficiency coincides with Carnot efficiency at zero power output, but decreases with increasing power output. This gives a fundamental lower bound on entropy production, which means that reversibility (in the thermodynamic sense) is impossible for finite power output. The suppression of efficiency by (nonlinear) phonon and photon effects is addressed in detail; when these effects are strong, maximum efficiency coincides with maximum power. Finally, we show in particular limits (typically without magnetic fields) that relaxation within the quantum system does not allow the system to exceed the bounds derived for relaxation-free systems, however, a general proof of this remains elusive.

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  • Received 30 October 2014
  • Revised 28 January 2015

DOI:https://doi.org/10.1103/PhysRevB.91.115425

©2015 American Physical Society

Authors & Affiliations

Robert S. Whitney

  • Laboratoire de Physique et Modélisation des Milieux Condensés (UMR 5493), Université Grenoble 1 and CNRS, Maison des Magistères, BP 166, 38042 Grenoble, France

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Issue

Vol. 91, Iss. 11 — 15 March 2015

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