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February 28, 2026Applied Physics Letters1 citations

Spin-chirality-dependent modulation of topological gap, Chern number, and valley polarization in monolayer kagome lattice Cr3Se4

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WZWenwu ZhouLLLu LiuGZGuibo Zheng

Key Points

  • The research investigates how spin-chirality influences topological properties like gaps and Chern numbers in Cr3Se4 kagome materials.
  • Conducted first-principles calculations and tight-binding modeling of monolayer Cr3Se4.
  • Analyzed the effects of different spin orientations on topological gaps and Chern numbers.
  • Explored valley polarization and its connection to structural asymmetry.
  • Identified that the topological bandgap decreases for collinear magnetization as spin orientation approaches in-plane.
  • Revealed that increasing the polar angle enhances the bandgap for specific spin-chirality (κ = 1).
  • Showed that the emergence of a topological Hall effect is associated with these tunable parameters.

Abstract

Kagome materials exhibit unique electronic properties, such as the quantum anomalous Hall effect. The control of Chern numbers is critical for quantum device manipulation, but existing research has mainly focused on collinear magnetization while neglecting chiral spin textures. Through first-principles calculations and tight-binding modeling of monolayer Cr3Se4, this study reveals spin-chirality-dependent control of topological gaps, Chern numbers, and valley polarization in kagome materials. The results demonstrate that the azimuthal angle has no observable effect. For collinear magnetization (κ = 0) or spin-chirality κ = −1, the topological bandgap decreases as the spin orientation approaches the in-plane direction. Conversely, increasing the polar angle enhances the bandgap for κ = 1. In the breathing kagome lattice, the degeneracy between K and Kʹ valleys is lifted. As the gap undergoes sequential closure and reopening in the two valleys, the structural asymmetry and spin-chirality allow for controlled tuning of the topological gap, Chern number, and valley polarization. Moreover, the emergence of a topological Hall effect is also demonstrated. These findings provide strategies for controlling topological states and advancing applications in quantum devices and valleytronic systems.

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Cite This Study

Zhou et al. (2026) studied this question.

synapsesocial.com/papers/69a287570a974eb0d3c0303ahttps://doi.org/10.1063/5.0312318
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Vector spin Chirality Locked Topological Hall effect in Kagome lattice with purely in-plane magnetization2025
  2. 2Effects of spin-orbit coupling in a valley chiral kagome network2024
  3. 3Topological Phase Transitions in Kagome Ferromagnets: The Role of Intrinsic Rashba Spin-Orbit Coupling2026
  4. 4Striped magnetization plateau and chirality-reversible anomalous Hall effect in a magnetic kagome metal2024 · 1 citations
  5. 5Effects of spin-orbit coupling in a valley chiral kagom\'e network2024