English

Zeeman effect in centrosymmetric antiferromagnets controlled by an electric field

Materials Science 2022-10-31 v2

Abstract

Centrosymmetric antiferromagnetic semiconductors, although abundant in nature, seem less promising than ferromagnets and ferroelectrics for practical applications in semiconductor spintronics. As a matter of fact, the lack of spontaneous polarization and magnetization hinders the efficient utilization of electronic spin in these materials. Here, we propose a paradigm to harness electronic spin in centrosymmetric antiferromagnets via Zeeman spin splittings of electronic energy levels -- termed as spin Zeeman effect -- which is controlled by electric field.By symmetry analysis, we identify twenty-one centrosymmetric antiferromagnetic point groups that accommodate such a spin Zeeman effect. We further predict by first-principles that two antiferromagnetic semiconductors, Fe2_2TeO6_6 and SrFe2_2S2_2O, are excellent candidates showcasing Zeeman splittings as large as \sim55 and \sim30 meV, respectively, induced by an electric field of 6 MV/cm. Moreover, the electronic spin magnetization associated to the splitting energy levels can be switched by reversing the electric field. Our work thus sheds light on the electric-field control of electronic spin in antiferromagnets, which broadens the scope of application of centrosymmetric antiferromagnetic semiconductors.

Keywords

Cite

@article{arxiv.2204.07264,
  title  = {Zeeman effect in centrosymmetric antiferromagnets controlled by an electric field},
  author = {Hong Jian Zhao and Xinran Liu and Yanchao Wang and Yurong Yang and Laurent Bellaiche and Yanming Ma},
  journal= {arXiv preprint arXiv:2204.07264},
  year   = {2022}
}