Thermodynamic work capacity of quantum information processing

Fuente: arXiv
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Autores principales: Badhani, Himanshu, S, Dhanuja G, Das, Siddhartha
Formato: Preprint
Publicado: 2025
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author Badhani, Himanshu
S, Dhanuja G
Das, Siddhartha
author_facet Badhani, Himanshu
S, Dhanuja G
Das, Siddhartha
contents We introduce the resource-theoretic free energy of a quantum channel as the maximal work extractable from the channel as its output equilibrates to a thermal state and its reference system remains locally intact. It is proportional to the relative entropy between the given channel and the absolutely thermal channel. It attains a clear operational meaning as twice the asymptotic rates of athermality distillation and formation under Gibbs preserving superchannels, which map one absolutely thermal channel to another for a given bath, thereby revealing the asymptotic reversibility of the resource theory of athermality for quantum channels. Consequently, we establish that the optimal extractable work in converting one channel to another through the asymptotic athermality distillation and formation tasks equals the difference in their free energies. We call this optimal work the thermodynamic work capacity of channel conversion. Quantum information processing and computing fundamentally concern the manipulation and transformation of quantum channels, which encompass quantum states, their transformations, and measurements. A quantitative characterization of the optimal thermodynamic work gain or expenditure in quantum information processing constitutes a key step toward formulating thermodynamics of quantum processes.
format Preprint
id arxiv_https___arxiv_org_abs_2510_23731
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Thermodynamic work capacity of quantum information processing
Badhani, Himanshu
S, Dhanuja G
Das, Siddhartha
Quantum Physics
Mathematical Physics
We introduce the resource-theoretic free energy of a quantum channel as the maximal work extractable from the channel as its output equilibrates to a thermal state and its reference system remains locally intact. It is proportional to the relative entropy between the given channel and the absolutely thermal channel. It attains a clear operational meaning as twice the asymptotic rates of athermality distillation and formation under Gibbs preserving superchannels, which map one absolutely thermal channel to another for a given bath, thereby revealing the asymptotic reversibility of the resource theory of athermality for quantum channels. Consequently, we establish that the optimal extractable work in converting one channel to another through the asymptotic athermality distillation and formation tasks equals the difference in their free energies. We call this optimal work the thermodynamic work capacity of channel conversion. Quantum information processing and computing fundamentally concern the manipulation and transformation of quantum channels, which encompass quantum states, their transformations, and measurements. A quantitative characterization of the optimal thermodynamic work gain or expenditure in quantum information processing constitutes a key step toward formulating thermodynamics of quantum processes.
title Thermodynamic work capacity of quantum information processing
topic Quantum Physics
Mathematical Physics
url https://arxiv.org/abs/2510.23731