English

Non-Hermitian topology of quantum spin-Hall systems to detect edge-state polarization

Mesoscale and Nanoscale Physics 2026-02-13 v1

Abstract

We study the non-Hermitian topology of multi-terminal transport in a quantum spin-Hall device described by the Bernevig-Hughes-Zhang model. We show that breaking time-reversal symmetry alone does not imply non-reciprocal transport or a non-Hermitian conductance matrix. Instead, non-Hermitian topology arises only when transport becomes directionally imbalanced. We identify two distinct mechanisms that generate such a response: spin-selective coupling at the contacts and an out-of-plane Zeeman field that unbalances the counter-propagating helical edge modes. We show, for unpolarized leads, that the spin polarization-dependent response to Zeeman fields, provides a transport-based probe of the intrinsic spin polarization of the helical edge states. Moreover, we demonstrate that non-Hermitian skin effect is more sensitive than conductance elements to detect the spin polarization of the edge states. Our results clarify the conditions required for non-Hermitian topology in quantum spin-Hall transport and establish non-Hermitian skin effect as a diagnostic tool for spin-selective coupling and edge-state polarization.

Keywords

Cite

@article{arxiv.2602.12048,
  title  = {Non-Hermitian topology of quantum spin-Hall systems to detect edge-state polarization},
  author = {Raghav Chaturvedi and Ion Cosma Fulga and Jeroen van den Brink and Ewelina M. Hankiewicz},
  journal= {arXiv preprint arXiv:2602.12048},
  year   = {2026}
}

Comments

8 pages, 5 figures