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Updated: Oct 9, 2025

Asymmetric Thermoelectrochemical Cell for Harvesting Low-grade Heat under Isothermal Operation
Published on: February 5, 2020
Asymmetric temperature equilibration with heat flow from cold to hot in a quantum thermodynamic system
Phillip C Lotshaw1, Michael E Kellman2
1Institute for Fundamental Science, Materials Science Institute, and Department of Chemistry and Biochemistry, University of Oregon Eugene, Oregon 97403, USA and Quantum Computational Sciences Group, Oak Ridge National Laboratory and Oak Ridge, Tennessee 37830, USA.
Abstract:
A model computational quantum thermodynamic network is constructed with two variable temperature baths coupled by a linker system, with an asymmetry in the coupling of the linker to the two baths. It is found in computational simulations that the baths come to "thermal equilibrium" at different bath energies and temperatures. In a sense, heat is observed to flow from cold to hot. A description is given in which a recently defined quantum entropy S_{univ}^{Q} for a pure state "universe" continues to increase after passing through the classical equilibrium point of equal temperatures, reaching a maximum at the asymmetric equilibrium. Thus, a second law account ΔS_{univ}^{Q}≥0 holds for the asymmetric quantum process. In contrast, a von Neumann entropy description fails to uphold the entropy law, with a maximum near when the two temperatures are equal, then a decrease ΔS^{vN}<0 on the way to the asymmetric equilibrium.
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