English

Interacting weak topological insulators and their transition to Dirac semimetal phases

Strongly Correlated Electrons 2016-01-06 v1 Materials Science

Abstract

Topological insulators in the presence of strong Coulomb interaction constitute novel phases of matter. Transitions between these phases can be driven by single-particle or many-body effects. On the basis of {\it ab-initio} calculations, we identify a concrete material, {\it i.e.} Ca2_{2}PtO4_{4}, that turns out to be a hole-doped weak topological insulator. Interestingly, the Pt-dd orbitals in this material are relevant for the band inversion that gives rise to the topological phase. Therefore, Coulomb interaction should be of importance in Ca2_{2}PtO4_{4}. To study the influence of interactions on the weak topological insulating phase, we look at a toy model corresponding to a layer-stacked 3D version of the Bernevig-Hughes-Zhang model with local interactions. For small to intermediate interaction strength, we discover novel interaction-driven topological phase transitions between the weak topological insulator and two Dirac semimetal phases. The latter correspond to gapless topological phases. For strong interactions, the system eventually becomes a Mott insulator.

Keywords

Cite

@article{arxiv.1509.02881,
  title  = {Interacting weak topological insulators and their transition to Dirac semimetal phases},
  author = {Gang Li and Werner Hanke and Giorgio Sangiovanni and Björn Trauzettel},
  journal= {arXiv preprint arXiv:1509.02881},
  year   = {2016}
}

Comments

10 pages, 8 figures, supplemental material is included