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March 21, 2026Nano Letters3 citations

Quantum Spin Hall Effect with Extended Topologically Protected Features in Altermagnetic Multilayers

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ZCZ. ChenFZFangyang ZhanZQZheng Qin

Key Points

  • This research aims to explore and demonstrate a quantum spin Hall effect with multiple pairs of gapless helical edge states through altermagnetism.
  • Utilized altermagnetism to surpass conventional QSH constraints.
  • Characterized the QSH phase using a mirror-spin Chern number.
  • Conducted first-principles calculations to identify material candidates.
  • Analyzed the scaling of gapless helical edge states with multilayer thickness.
  • Demonstrated the existence of multiple pairs of gapless helical edge states.
  • Identified altermagnetic Fe2Se2O multilayers as potential material candidates.
  • Showed that the number of edge states increases with additional layers.
  • Achieved a large, quantized, and accessible spin-Hall conductance.

Abstract

Conventional topological classification dictates that time-reversal symmetry confines the quantum spin Hall (QSH) effect to a Z2 classification, permitting only a single pair of gapless helical edge states. Here, we utilize altermagnetism to circumvent this fundamental constraint. We demonstrate a unique QSH phase possessing multiple pairs of gapless helical edge states in altermagnetic multilayers. This QSH phase, characterized by a mirror-spin Chern number, emerges from the interplay of spin-orbit coupling and d-wave altermagnetic ordering. Moreover, using first-principles calculations, we identify altermagnetic Fe2Se2O multilayers as promising material candidates, in which the number of gapless helical edge states scales with the number of layers, leading to a large, exactly quantized, and experimentally accessible spin-Hall conductance. Our findings unveil a new mechanism for stabilizing multiple pairs of gapless helical edge states, expanding the scope of QSH effects, and providing a blueprint for utilizing altermagnetism to engineer topological phases.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69be356f6e48c4981c673ba4https://doi.org/10.1021/acs.nanolett.6c00136
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