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    Fluctuation theorems for multipartite quantum coherence and correlation dynamics

    Kun Zhang1,2,3,4, Mo-Yang Ni1, Hai-Long Shi5,*, Xiao-Hui Wang1,2,3,4,†, and Jin Wang6,‡

    • 1School of Physics, Northwest University, Xi'an 710127, China
    • 2Shaanxi Key Laboratory for Theoretical Physics Frontiers, Xi'an 710127, China
    • 3Peng Huanwu Center for Fundamental Theory, Xi'an 710127, China
    • 4Fundamental Discipline Research Center for Quantum Science and technology of Shaanxi Province, Xi'an 710127, China
    • 5QSTAR, INO-CNR, and LENS, Largo Enrico Fermi 2, 50125 Firenze, Italy
    • 6Department of Chemistry, Stony Brook University, and Department of Physics and Astronomy, Stony Brook University, Stony Brook, New York 11794, USA

    • *Contact author: hailong.shi@ino.cnr.it
    • †Contact author: xhwang@nwu.edu.cn
    • ‡Contact author: jin.wang.1@stonybrook.edu

    Phys. Rev. A 113, 022217 – Published 23 February, 2026

    DOI: https://doi.org/10.1103/sgmk-bdjy

    Abstract

    Fluctuation theorems establish exact relations for nonequilibrium dynamics, profoundly advancing the field of stochastic thermodynamics. In this work, we extend quantum fluctuation theorems beyond the traditional thermodynamic framework to quantum multipartite information dynamics, where both the system and the environment are multipartite without assuming any thermodynamic constraints. Based on the two-point measurement scheme and the classical probability, we establish the fluctuation theorem for the dynamics of classical multipartite mutual information. By extending to quasiprobability, we derive quantum fluctuation theorems for multipartite coherence and quantum correlations, presenting them in both integral and detailed forms. Our theoretical results are illustrated and verified using three-qubit examples, and feasible experimental verification protocols are proposed. These findings uncover the statistical structure underlying the nonequilibrium quantum information dynamics, providing fundamental insights and alternative tools for advancing quantum technologies.

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