English

Emergent topological states via digital (001) oxide superlattices

Materials Science 2022-09-30 v1

Abstract

Oxide heterostructures exhibit many intriguing properties. Here we provide design principles for inducing multiple topological states in (001) (AMAMO3_3)1_1/(AMAM'O3_3)1_1 oxide superlattices. Aided by first-principles calculations and model analysis, we show that a (SrMMO3)1_1/(SrMM'O3_3)1_1 superlattice (MM = Nb, Ta and MM' = Rh, Ir) is a strong topological insulator with Z2Z_2 index (1;001). More remarkably, a (SrMoO3)1_1/(SrIrO3)1_1 superlattice exhibits multiple coexisting topological insulator (TI) and topological Dirac semi-metal (TDS) states. The TDS state has a pair of type-II Dirac points near the Fermi level and symmetry-protected Dirac node lines. The surface TDS Dirac cone is sandwiched by two surface TI Dirac cones in the energy-momentum space. The non-trivial topological properties arise from the band inversion between dd orbitals of two dissimilar transition metal atoms and a particular parity property of (001) superlattice geometry. Our work demonstrates how to induce nontrivial topological states in (001) perovskite oxide heterostructures by rational design.

Keywords

Cite

@article{arxiv.2209.14674,
  title  = {Emergent topological states via digital (001) oxide superlattices},
  author = {Zhiwei Liu and Hongquan Liu and Jiaji Ma and Xiaoxuan Wang and Gang Li and Hanghui Chen},
  journal= {arXiv preprint arXiv:2209.14674},
  year   = {2022}
}

Comments

29 pages, 6 figures and 1 table