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Dynamically stable topological edge states in an extended Su-Schrieffer-Heeger ladder with balanced perturbation

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The on-site potentials may break the symmetry of a system, resulting in the loss of its original topology protected by the symmetry. In this work, we study the counteracting effect of non-Hermitian terms on real potentials, resulting in dynamically stable topological edge states. We show exactly for a class of systems that the spectrum remains unchanged in the presence of balanced perturbations. As a demonstration, we investigate an extended non-Hermitian Su-Schrieffer-Heeger(SSH) ladder. We find that the bulk-boundary correspondence still holds, and the zero-energy edge states become coalescing states. In comparison to the original SSH chain, such edge states are robust not only against local perturbations but also in the time domain. As a result, a trivial initial state can always evolve to a stable edge state. Our results provide insights for the application of time-domain stable topological quantum devices.

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Quantum dynamical signatures of non-Hermitian boundary modes

cond-mat.mes-hall · 2025-06-19 · accept · novelty 7.0

A solvable bosonic SSH chain with sublattice dissipation displays a positive Liouvillian separation gap that dynamically isolates the non-Hermitian boundary mode, yielding detectable density and polarization signatures.

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  • Quantum dynamical signatures of non-Hermitian boundary modes cond-mat.mes-hall · 2025-06-19 · accept · none · ref 41 · internal anchor

    A solvable bosonic SSH chain with sublattice dissipation displays a positive Liouvillian separation gap that dynamically isolates the non-Hermitian boundary mode, yielding detectable density and polarization signatures.