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    Scaling behavior of dissipative systems with imaginary gap closing

    Jinghui Pi1,2,*, Xingli Li2,1, and Yangqian Yan2,3,1,†

    • *Contact author: pijh14@gmail.com
    • †Contact author: yqyan@cuhk.edu.hk

    Phys. Rev. B 113, 064302 – Published 11 February, 2026

    DOI: https://doi.org/10.1103/3ht3-ty3h

    Abstract

    Point-gap topology, characterized by spectral winding numbers, is crucial to non-Hermitian topological phases and dramatically alters real-time dynamics. In this paper, we study the evolution of quantum particles in dissipative systems with imaginary gap closing, using the saddle-point approximation method. For trivial point-gap systems, imaginary gap-closing points can also be saddle points. This leads to a single power-law decay of the local Green's function, with the asymptotic scaling behavior determined by the order of these saddle points. In contrast, for nontrivial point-gap systems, imaginary gap-closing points do not coincide with saddle points in general. This results in a dynamical behavior characterized by two different scaling laws for distinct time regimes. In the short-time regime, the local Green's function is governed by the dominant saddle points and exhibits an asymptotic exponential decay. In the long-time regime, however, the dynamics is controlled by imaginary gap-closing points, leading to a power-law decay envelope. Our findings advance the understanding of quantum dynamics in dissipative systems and provide predictions testable in future experiments.

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