English

Probing $k$-Space Alternating Spin Polarization via the Anomalous Hall Effect

Mesoscale and Nanoscale Physics 2025-01-27 v1

Abstract

Altermagnets represent a recently discovered class of collinear magnets, characterized by antiparallel neighboring magnetic moments and alternating-sign spin polarization in momentum-space(kk-space). However, experimental methods for probing the kk-space spin polarization in altermagnets remain limited. In this work, we propose an approach to address this challenge by interfacing an altermagnet with the surface of a topological insulator. The massless Dirac fermions on the topological insulator surface acquire a mass due to the time-reversal symmetry breaking. The local kk-space magnetic moment at the Dirac point directly determines both the sign and magnitude of this Dirac mass, resulting in an anomalous Hall effect. By measuring the Hall conductance, we can extract the local kk-space magnetic moment. Moreover, we can map the global magnetic moment distribution by tuning the Dirac point position using an in-plane magnetic field, thereby revealing the kk-space spin density of the altermagnet. This work establishes the Dirac fermion on the topological insulator surface as a sensitive probe for unveiling spin characters of altermagnets and those of other unconventional antiferromagnets.

Keywords

Cite

@article{arxiv.2501.14217,
  title  = {Probing $k$-Space Alternating Spin Polarization via the Anomalous Hall Effect},
  author = {Rui Chen and Zi-Ming Wang and Hai-Peng Sun and Bin Zhou and Dong-Hui Xu},
  journal= {arXiv preprint arXiv:2501.14217},
  year   = {2025}
}
R2 v1 2026-06-28T21:15:43.133Z