Unified entropy production in finite quantum systems

Fuente: arXiv
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Main Authors: Nishiyama, Tomohiro, Hasegawa, Yoshihiko
Format: Preprint
Published: 2026
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author Nishiyama, Tomohiro
Hasegawa, Yoshihiko
author_facet Nishiyama, Tomohiro
Hasegawa, Yoshihiko
contents In finite-dimensional quantum systems, temperature cannot be uniquely defined. This, in turn, implies that there are several ways to define entropy production in finite-dimensional quantum systems, because the classical entropy production depends on temperature. We propose a unified definition of entropy production based on the difference in quantum relative entropy with respect to reference states characterized by effective temperatures. We demonstrate that the proposed definition naturally decomposes into a Clausius-type entropy production and an additional contribution arising from the time dependence of the effective temperature. Furthermore, we show that requiring the entropy production rate to take the conventional form as the sum of the entropy change and the heat flow constrains the effective temperature to be either constant or equal to a specific energy-matching effective temperature. For general initial states, entropy production can become negative, in which case we derive lower bounds on entropy production and establish sufficient conditions for its non-negativity using the trace distance.
format Preprint
id arxiv_https___arxiv_org_abs_2602_01669
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Unified entropy production in finite quantum systems
Nishiyama, Tomohiro
Hasegawa, Yoshihiko
Quantum Physics
In finite-dimensional quantum systems, temperature cannot be uniquely defined. This, in turn, implies that there are several ways to define entropy production in finite-dimensional quantum systems, because the classical entropy production depends on temperature. We propose a unified definition of entropy production based on the difference in quantum relative entropy with respect to reference states characterized by effective temperatures. We demonstrate that the proposed definition naturally decomposes into a Clausius-type entropy production and an additional contribution arising from the time dependence of the effective temperature. Furthermore, we show that requiring the entropy production rate to take the conventional form as the sum of the entropy change and the heat flow constrains the effective temperature to be either constant or equal to a specific energy-matching effective temperature. For general initial states, entropy production can become negative, in which case we derive lower bounds on entropy production and establish sufficient conditions for its non-negativity using the trace distance.
title Unified entropy production in finite quantum systems
topic Quantum Physics
url https://arxiv.org/abs/2602.01669