English

Ferromagnetic polar metals via epitaxial strain: a case study of SrCoO$_3$

Materials Science 2024-07-11 v1

Abstract

While polar metals are a metallic analogue of ferroelectrics, magnetic polar metals can be considered as a metallic analogue of multiferroics. There have been a number of attempts to integrate magnetism into a polar metal by synthesizing new materials or heterostructures. Here we use a simple yet widely used approach--epitaxial strain in the search for intrinsic magnetic polar metals. Via first-principles calculations, we study strain engineering of a ferromagnetic metallic oxide SrCoO3_3, whose bulk form crystallizes in a cubic structure. We find that under an experimentally feasible biaxial strain on the abab plane, collective Co polar displacements are stabilized in SrCoO3_3. Specifically, a compressive strain stabilizes Co polar displacements along the cc axis, while a tensile strain stabilizes Co polar displacements along the diagonal line in the abab plane. In both cases, we find an intrinsic ferromagnetic polar metallic state in SrCoO3_3. In addition, we also find that a sufficiently large biaxial strain (>4%> 4\%) can yield a ferromagnetic-to-antiferromagnetic transition in SrCoO3_3. Our work demonstrates that in addition to yielding emergent multiferroics, epitaxial strain is also a viable approach to inducing magnetic polar metallic states in quantum materials.

Keywords

Cite

@article{arxiv.2407.07349,
  title  = {Ferromagnetic polar metals via epitaxial strain: a case study of SrCoO$_3$},
  author = {Zhiwei Liu and Qiuyue Li and Hanghui Chen},
  journal= {arXiv preprint arXiv:2407.07349},
  year   = {2024}
}

Comments

19 pages, 6 figures