Muon spin rotation and relaxation study on topological noncentrosymmetric superconductor PbTaSe
arXiv:2112.05970 · doi:10.1088/1367-2630/ac48ea
Abstract
Topological superconductivity is an exotic phenomenon due to the symmetry-protected topological surface state, in which a quantum system has an energy gap in the bulk but supports gapless excitations confined to its boundary. Symmetries including central and time-reversal (TRS), along with their relations with topology, are crucial for topological superconductivity. We report muon spin relaxation/rotation (SR) experiments on a topological noncentrosymmetric superconductor PbTaSe to study its TRS and gap symmetry. Zero-field SR experiments indicate the absence of internal magnetic field in the superconducting state, consistent with previous SR results. Furthermore, transverse-field SR measurements reveals that the superconducting gap of PbTaSe is an isotropic three-dimensional fully-gapped single-band. The fully-gapped results can help understand the pairing mechanism and further classify the topological superconductivity in this system.
References in corpus (6)
- Classification of topological insulators and superconductors in three spatial dimensions
- Evidence for time-reversal symmetry breaking in the non-centrosymmetric superconductor LaNiC
- Topological superconductivity and unconventional pairing in oxide interfaces
- Dirac Surface States and Nature of Superconductivity in Noncentrosymmetric BiPd
- Time-reversal symmetry breaking in noncentrosymmetric superconductor Re6Hf:further evidence for unconventional behaviour in the alpha-Mn family of materials
- Nodeless superconductivity and preserved time-reversal symmetry in the noncentrosymmetric Mo3P superconductor