Transport modeling demonstrates intrinsic non-Hermitian topology in Hermitian quantum anomalous Hall systems, uncovering measurable skin effects without engineered gain and loss.
Non-Hermitian physics, known for phenomena like exceptional points and the skin effect, has been most prominently realized in engineered systems relying on controlled gain and loss. Here we show that it can also arise naturally as an intrinsic transport response of a globally Hermitian quantum anomalous Hall system, without the need for external non-Hermitian engineering. We show that the interplay between unidirectional chiral edge modes and diffusive normal edge modes induces intrinsic non-reciprocal transport described by a continuum Hatano-Nelson model. Consequently, the non-Hermitian skin effect is encoded directly in experimentally accessible Hall-bar observables: the electrochemical potential and local heat dissipation acquire chirality-dependent exponential spatial profiles, while the longitudinal conductance decays exponentially with system size and the Hall conductance remains quantized. Using Landauer–Büttiker simulations, we confirm these transport signatures and identify magnetic topological insulators as a realistic platform for an intrinsic non-Hermitian transport response. Our results bridge non-Hermitian topology with mesoscopic transport, opening a pathway toward non-Hermitian topological devices in solid-state systems. Here, the authors show that the interplay between chiral and normal edge transport in a quantum anomalous Hall system can generate non-Hermitian topology, producing measurable exponential patterns in voltage, heat dissipation, and conductance.
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Zhou et al. (2026) studied this question.
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