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A unified framework for non-Hermitian localization with boundary-insensitive modes and electric-magnetic analogy
Z
J
K
X
C
X
寇
DOI:10.1038/s42005-026-02793-3.png)
Abstract
En 中文
The non-Hermitian skin effect is fundamentally characterized by its sensitivity to boundary conditions, reflected in changes to the energy spectrum and boundary-localized eigenstates. Here, we demonstrate that a spatially inhomogeneous imaginary scalar potential field induces a skin effect that is insensitive to boundary conditions. Both the spectrum and eigenstate distribution remain invariant, a behavior not captured by existing theories. We attribute this anomaly to translational symmetry breaking induced by spatially varying imaginary potentials in finite systems. We further formulate a theory that universally predicts localization in single-particle non-Hermitian systems. This framework classifies skin effects into two fundamental types: electric, driven by imaginary scalar potentials, and magnetic, driven by imaginary vector potentials, and reveals a phase transition between them, where eigenstates become fully delocalized. Our work provides a unified theory for non-Hermitian localization, allowing full control over skin modes via potential engineering in various platforms like photonic crystals and cold-atom systems. Waves in systems with gain and loss usually pile up at a sample’s edges, and this skin effect normally changes drastically with boundary conditions. This study shows that a spatially varying imaginary potential pins localization to interior domain walls and unifies skin effects into electric and magnetic types with a sharp transition between them.
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