English

Revisiting quadratic band crossing: from interaction-driven instability to intrinsic topology

Mesoscale and Nanoscale Physics 2026-04-09 v1 Materials Science

Abstract

The realization of robust quantum anomalous Hall (QAH) phases at elevated temperatures remains a central challenge in condensed matter physics. While quadratic band crossing points (QBCP) provide a promising route towards QAH states, existing proposals are largely confined to idealized models or hindered by interaction-driven competing orders. Here, we demonstrate that these limitations are not intrinsic to QBCP but arise from their specific implementation. We propose a general mechanism where band inversion between a symmetry-protected orbital doublet (e.g. dxz,dyzd_{xz},d_{yz}) and an isolated orbital (e.g. dz2d_{z^2})-generically generates a QBCP with opposite curvature. This crossing is directly gapped at the single-particle level by intrinsic atomic spin-orbit coupling, while the underlying band inversion naturally shields the resulting topological gap against other interaction-driven instabilities. We further suggest monolayer compounds MNX2MNX_2 (MM= Ni, Pd, Pt; NN= Nb, Ta; XX= S, Se, Te) as a realistic material class that intrinsically realizes this mechanism. These findings provide a concrete pathway toward robust QAH phases in correlated materials.

Keywords

Cite

@article{arxiv.2604.07139,
  title  = {Revisiting quadratic band crossing: from interaction-driven instability to intrinsic topology},
  author = {Yadong Jiang and Linghao Huang and Zhaochen Liu and Huan Wang and Jing Wang},
  journal= {arXiv preprint arXiv:2604.07139},
  year   = {2026}
}

Comments

7 pages, 4 figures