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    Dissipation-driven topological phase transitions in open quantum systems independent of system Hamiltonian

    Tian-Shu Deng1,* and Fan Yang2,†

    • 1School of Physics and Astronomy, Yunnan Key Laboratory for Quantum Information, Yunnan University, Kunming 650091, China
    • 2Key Laboratory of Quantum Materials and Devices of Ministry of Education, School of Physics, Southeast University, Nanjing 211189, China

    • *Contact author: 20220225@ynu.edu.cn
    • †Contact author: 101013867@seu.edu.cn

    Phys. Rev. B 113, 024312 – Published 22 January, 2026

    DOI: https://doi.org/10.1103/3wcr-sxtz

    Abstract

    We investigate dissipation-driven topological phase transitions in one-dimensional quantum open systems governed by the Lindblad equation with linear dissipation operators, which ensure the density matrix retains its Gaussian form throughout the dynamics. By employing the modular Hamiltonian framework, we rigorously demonstrate that the Z2 topological invariant characterizing steady states in one-dimensional class D systems is exclusively dependent on the dissipation operators, rather than the system Hamiltonian. Through a sudden quench protocol where the system evolves from the steady state of one Lindbladian to another, we reveal that topological transitions can occur at analytically predictable critical times, even when the initial and final steady states share identical topological indices. These transitions are shown, both analytically and numerically, to depend solely on dissipation parameters. Entanglement spectrum analysis demonstrates bulk-edge correspondence in nonequilibrium density matrices via coexisting single-particle gap closures (periodic boundaries) and topologically protected zero modes (open boundaries), directly underpinning the detection of dissipation-induced topology in quantum simulators.

    Physics Subject Headings (PhySH)

    Corrections

    5 August, 2026

    Correction: A grant number in the Acknowledgments section contained an error and has been fixed.

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