Ferromagnetic polar metals via epitaxial strain: a case study of SrCoO$_3$
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 SrCoO, whose bulk form crystallizes in a cubic structure. We find that under an experimentally feasible biaxial strain on the plane, collective Co polar displacements are stabilized in SrCoO. Specifically, a compressive strain stabilizes Co polar displacements along the axis, while a tensile strain stabilizes Co polar displacements along the diagonal line in the plane. In both cases, we find an intrinsic ferromagnetic polar metallic state in SrCoO. In addition, we also find that a sufficiently large biaxial strain () can yield a ferromagnetic-to-antiferromagnetic transition in SrCoO. 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