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    Thermal Uhlmann-Chern number: Bridging pure and mixed states

    Xin Wang1, Xu-Yang Hou1, Yan He2,*, and Hao Guo1,3,†

    • 1School of Physics, Southeast University, Jiulonghu Campus, Nanjing 211189, China
    • 2College of Physical Science and Technology, Sichuan University, Chengdu, Sichuan 610064, China
    • 3Hefei National Laboratory, Hefei 230088, China

    • *Contact author: heyan_ctp@scu.edu.cn
    • †Contact author: guohao.ph@seu.edu.cn

    Phys. Rev. B 112, 214112 – Published 17 December, 2025

    DOI: https://doi.org/10.1103/prq8-c9ns

    Abstract

    Topological properties of quantum systems at finite temperatures, described by mixed states, pose significant challenges due to the triviality of the Uhlmann bundle. By inserting the density matrix into the Chern character, we introduce the thermal Uhlmann-Chern number, a generalization of the Chern number that reduces to the pure-state value in the zero-temperature limit and vanishes at infinite temperature, providing a framework to study the temperature-dependent evolution of topological features in mixed states. We provide, for the first time, a rigorous mathematical proof that the first- and higher-order Uhlmann-Chern numbers converge to the corresponding Chern numbers in the zero-temperature limit, differing only by a factor of 1/D for D-fold degenerate ground states. We demonstrate the utility of this framework through applications to a two-level system, the coherent state model, the 2D Haldane model, and a four-band model, highlighting the temperature-dependent behavior of topological invariants. Our results establish a robust bridge between the topological properties of pure and mixed states, offering new insights into finite-temperature topological phases.

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