English

Origin of $A$-type antiferromagnetism and chiral split magnons in altermagnetic $\alpha$-MnTe

Materials Science 2025-03-14 v3 Mesoscale and Nanoscale Physics

Abstract

The origin of the AA-type antiferromagnetic ordering, characterized by ferromagnetic layers coupling antiferromagnetically, in the prototype semiconductor altermagnet α\alpha-MnTe has been a topic of ongoing debate. Experimentally, α\alpha-MnTe exhibits an in-plane ferromagnetic exchange interaction, whereas previous \emph{ab initio} calculations predicted an antiferromagnetic interaction. In this paper, we resolve this discrepancy by considering an expanded set of magnetic configurations, which reveals a ferromagnetic in-plane exchange interaction in agreement with experimental findings. Additionally, we demonstrate that the 10th nearest-neighbor exchange interaction is directionally dependent, inducing a nonrelativistic chiral splitting in the magnon bands, as recently observed experimentally. We further show that applying a compressive strain may significantly enhance both nonrelativistic spin and chiral magnon splittings. The strain can also change the sign of the in-plane exchange interaction. Computing magnetic susceptibility, we show that strain enhances the N{\'e}el temperature, significantly. Our results highlight the critical importance of convergence in the number of magnetic configurations for spin interactions in antiferromagnetic materials.

Keywords

Cite

@article{arxiv.2411.11985,
  title  = {Origin of $A$-type antiferromagnetism and chiral split magnons in altermagnetic $\alpha$-MnTe},
  author = {Mojtaba Alaei and Pawel Sobieszczyk and Andrzej Ptok and Nafise Rezaei and Artem R. Oganov and Alireza Qaiumzadeh},
  journal= {arXiv preprint arXiv:2411.11985},
  year   = {2025}
}

Comments

4.5 pages, 4 figures, 1 table