Nonsymmorphic Symmetry-Protected Band Crossings in a Square-Net Metal PtPb
arXiv:2202.06927 · doi:10.1038/s41535-022-00441-x
Abstract
Topological semimetals with symmetry-protected band crossings have emerged as a rich landscape to explore intriguing electronic phenomena. Nonsymmorphic symmetries in particular have been shown to play an important role in protecting the crossings along a line (rather than a point) in momentum space. Here we report experimental and theoretical evidence for Dirac nodal line crossings along the Brillouin zone boundaries in PtPb, arising from the nonsymmorphic symmetry of its crystal structure. Interestingly, while the nodal lines would remain gapless in the absence of spin-orbit coupling (SOC), the SOC in this case plays a detrimental role to topology by lifting the band degeneracy everywhere except at a set of isolated points. Nevertheless, the nodal line is observed to have a bandwidth much smaller than that found in density functional theory (DFT). Our findings reveal PtPb to be a material system with narrow crossings approximately protected by non-symmorhpic crystalline symmetries.
21 pages, 4 figures, accepted for publication in npj Quantum Mater
References in corpus (6)
- Discovery (theoretical prediction and experimental observation) of a large-gap topological-insulator class with spin-polarized single-Dirac-cone on the surface
- Continuous-time Monte Carlo methods for quantum impurity models
- The space group classification of topological band insulators
- Quantum Monte Carlo Impurity Solver for Cluster DMFT and Electronic Structure Calculations in Adjustable Base
- Hybridization expansion impurity solver: General formulation and application to Kondo lattice and two-orbital models
- Unexpected Dirac-Node Arc in the Topological Line-Node Semimetal HfSiS