Disorder-driven exceptional points and concurrent topological phase transitions in non-Hermitian systems

Fuente: arXiv
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Main Authors: Cheng, Xiaoyu, Qu, Tiantao, Yang, Yaqing, Chen, Jun, Zhang, Lei
Format: Preprint
Published: 2025
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author Cheng, Xiaoyu
Qu, Tiantao
Yang, Yaqing
Chen, Jun
Zhang, Lei
author_facet Cheng, Xiaoyu
Qu, Tiantao
Yang, Yaqing
Chen, Jun
Zhang, Lei
contents Exceptional points (EPs) are spectral degeneracies unique to non-Hermitian systems which underpin phenomena from enhanced sensing to unconventional topology. While disorder is usually viewed as detrimental, it can also drive topological phase transitions (TPTs). Here, we show that random disorder alone can generate EPs and concurrent TPTs in a multiorbital non-Hermitian lattice with nonreciprocal hopping. Increasing disorder induces successive real-complex-real spectral transitions accompanied by band inversion and quantized changes in the spin Bott index. Using effective medium theory and large-scale simulations, we trace these transitions to a competition between disorder-induced energy-level renormalization and nonreciprocity-driven hybridization. The resulting phase diagram reveals extended EP lines that emerge from the Hermitian TPT point and persist over a broad parameter range. Our results establish disorder as an active mechanism for engineering exceptional point mediated topology in non-Hermitian matter.
format Preprint
id arxiv_https___arxiv_org_abs_2505_13057
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Disorder-driven exceptional points and concurrent topological phase transitions in non-Hermitian systems
Cheng, Xiaoyu
Qu, Tiantao
Yang, Yaqing
Chen, Jun
Zhang, Lei
Disordered Systems and Neural Networks
Exceptional points (EPs) are spectral degeneracies unique to non-Hermitian systems which underpin phenomena from enhanced sensing to unconventional topology. While disorder is usually viewed as detrimental, it can also drive topological phase transitions (TPTs). Here, we show that random disorder alone can generate EPs and concurrent TPTs in a multiorbital non-Hermitian lattice with nonreciprocal hopping. Increasing disorder induces successive real-complex-real spectral transitions accompanied by band inversion and quantized changes in the spin Bott index. Using effective medium theory and large-scale simulations, we trace these transitions to a competition between disorder-induced energy-level renormalization and nonreciprocity-driven hybridization. The resulting phase diagram reveals extended EP lines that emerge from the Hermitian TPT point and persist over a broad parameter range. Our results establish disorder as an active mechanism for engineering exceptional point mediated topology in non-Hermitian matter.
title Disorder-driven exceptional points and concurrent topological phase transitions in non-Hermitian systems
topic Disordered Systems and Neural Networks
url https://arxiv.org/abs/2505.13057