Dirac topological insulator in the d manifold of a honeycomb oxide
arXiv:1604.05554 · doi:10.1103/PhysRevB.94.115141
Abstract
We show by means of ab initio calculations and tight-binding modeling that an oxide system based on a honeycomb lattice can sustain topologically non-trivial states if a single orbital dominates the spectrum close to the Fermi level. In such situation, the low energy spectra is described by two Dirac equations that become non-trivially gapped when spin-orbit coupling (SOC) is switched on. We provide one specific example for this but the recipe is general. We discuss a realization of this starting from a conventional spin-a-half honeycomb antiferromagnet whose states close to the Fermi energy are d orbitals. Switching off magnetism by atomic substitution and ensuring that the electronic structure becomes two-dimensional is sufficient for topologicality to arise in such a system. We show that the gap in such model scales linearly with SOC, opposed to other oxide-based topological insulators, where smaller gaps tend to appear by construction of the lattice. We also provide a study of the quantum Hall effect in such system, showing the close connections with the physics of graphene but in a d-electron system.
7 pages, 5 figures
References in corpus (13)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Quantum Spin Hall Insulator State in HgTe Quantum Wells
- Superconducting proximity effect and Majorana fermions at the surface of a topological insulator
- Topological Insulators with Inversion Symmetry
- Topological Crystalline Insulators
- A tight-binding approach to uniaxial strain in graphene
- The Quantum Spin Hall Effect: Theory and Experiment
- Computing topological invariants without inversion symmetry
- Quantum spin Hall effect in a transition metal oxide Na2IrO3
- Emergence of a Chern-insulating state from a semi-Dirac dispersion
- Confinement-driven transitions between topological and Mott phases in (LaNiO3)/(LaAlO3)(111) superlattices
- Effective Dirac Hamiltonian for anisotropic honeycomb lattices: optical properties
- Ab initio study of nontrivial topological phases in corundum structured MOAlO multilayers