Virtual temperatures as a key quantifier for passive states in quantum thermodynamic processes

Fuente: arXiv
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Main Authors: Sonkar, Sachin, Johal, Ramandeep S.
Format: Preprint
Published: 2026
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author Sonkar, Sachin
Johal, Ramandeep S.
author_facet Sonkar, Sachin
Johal, Ramandeep S.
contents We analyze the role of virtual temperatures for passive quantum states through the lens of majorization theory. A mean temperature over the virtual temperatures of adjacent energy levels is defined to compare the passive states of the system resulting from isoenergetic and isoentropic transformations. The role of the minimum and the maximum (min-max) values of the virtual temperatures in determining the direction of heat flow between the system and the environment is argued based on majorization relations. We characterize the intermediate passive states in a quantum Otto engine using these virtual temperatures and derive an upper bound for the Otto efficiency that can be expressed in terms of the min-max virtual temperatures of the working medium. An explicit example of the coupled-spins system is worked out. Moreover, virtual temperatures serve to draw interesting parallels between the quantum thermodynamic processes and their classical counterparts. Thus, virtual temperature emerges as a key operational quantity linking passivity and majorization to the optimal performance of quantum thermal machines.
format Preprint
id arxiv_https___arxiv_org_abs_2601_04905
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Virtual temperatures as a key quantifier for passive states in quantum thermodynamic processes
Sonkar, Sachin
Johal, Ramandeep S.
Quantum Physics
Statistical Mechanics
We analyze the role of virtual temperatures for passive quantum states through the lens of majorization theory. A mean temperature over the virtual temperatures of adjacent energy levels is defined to compare the passive states of the system resulting from isoenergetic and isoentropic transformations. The role of the minimum and the maximum (min-max) values of the virtual temperatures in determining the direction of heat flow between the system and the environment is argued based on majorization relations. We characterize the intermediate passive states in a quantum Otto engine using these virtual temperatures and derive an upper bound for the Otto efficiency that can be expressed in terms of the min-max virtual temperatures of the working medium. An explicit example of the coupled-spins system is worked out. Moreover, virtual temperatures serve to draw interesting parallels between the quantum thermodynamic processes and their classical counterparts. Thus, virtual temperature emerges as a key operational quantity linking passivity and majorization to the optimal performance of quantum thermal machines.
title Virtual temperatures as a key quantifier for passive states in quantum thermodynamic processes
topic Quantum Physics
Statistical Mechanics
url https://arxiv.org/abs/2601.04905