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February 11, 2026Applied Physics Letters2 citations

Tunable quantum layer spin Hall effect in bilayer altermagnetic Nb2SeTeO

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HSH. ShiYJYuqian JiangYTYuping Tian

Key Points

  • The study aims to explore the tunability of magnetic and topological properties in bilayer Nb2SeTeO.
  • Conduct first-principles calculations to analyze electronic properties.
  • Investigate effects of stacking configurations on spin-valley characteristics.
  • Apply external electric fields and strain to modulate the material's properties.
  • Compressive biaxial strain leads to a transition to a quantum spin Hall phase with a high spin Chern number.
  • Compressive uniaxial strain induces a quantum layer spin Hall effect with switchable chiral edge states.
  • Identified bilayer Nb2SeTeO as a candidate for advanced spintronic applications due to controllable topological phases.

Abstract

Two-dimensional altermagnets have recently gained attention for enabling spin-polarized transport without net magnetization. The van der Waals layered form introduces an additional layer degree of freedom, allowing new ways to control spin and valley behaviors through interlayer coupling and external modulation. In our work, bilayer Nb2SeTeO shows tunable magnetic and topological properties based on first-principles calculations. The stacking configuration strongly influences its electronic structure and spin–valley characteristics. External electric fields and strain effectively modulate these properties. Compressive biaxial strain drives a transition to a quantum spin Hall phase with a high spin Chern number, while compressive uniaxial strain induces a quantum layer spin Hall effect, where chiral edge states can be switched by applying uniaxial strain in two vertical directions. These results identify bilayer Nb2SeTeO as a promising material for spintronic devices with controllable topological phases.

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Cite This Study

Shi et al. (2026) studied this question.

synapsesocial.com/papers/698c1ca1267fb587c655f35ehttps://doi.org/10.1063/5.0312073
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