Topological crystalline insulator state with type-II Dirac fermions in transition metal dipnictides
arXiv:1911.06544 · doi:10.1103/PhysRevB.100.205118
Abstract
The interplay between topology and crystalline symmetries in materials can lead to a variety of topological crystalline insulator (TCI) states. Despite significant effort towards their experimental realization, so far only PbSnTe has been confirmed as a mirror-symmetry protected TCI. Here, based on first-principles calculations combined with a symmetry analysis, we identify a rotational-symmetry protected TCI state in the transition-metal dipnictide RX family, where R = Ta or Nb and X = P, As, or Sb. Taking TaAs as an exemplar system, we show that its low-energy band structure consists of two types of bulk nodal lines in the absence of spin-orbit coupling (SOC) effects. Turning on the SOC opens a continuous bandgap in the energy spectrum and drives the system into a -symmetry-protected TCI state. On the (010) surface, we show the presence of rotational-symmetry-protected nontrivial Dirac cone states within a local bulk energy gap of 300 meV. Interestingly, the Dirac cones have tilted energy dispersion, realizing a type-II Dirac fermion state in a topological crystalline insulator. Our results thus indicate that the TaAs materials family provides an ideal setting for exploring the unique physics associated with type-II Dirac fermions in rotational-symmetry-protected TCIs.
7 pages, 7 figures, Accepted for publication in Physical Review B (2019)
References in corpus (7)
- Topological Insulators with Inversion Symmetry
- Topological Crystalline Insulators
- -dimensional edge states of rotation symmetry protected topological states
- Anisotropic giant magnetoresistance in NbSb2
- Observation of a Majorana zero mode in a topologically protected edge channel
- Purely rotational symmetry-protected topological crystalline insulator -Bi4Br4
- Quantum oscillation of thermal conductivity and violation of Weidemann-Franz law in TaAs and NbAs