Nodeless superconductivity and topological nodal states in molybdenum carbide
arXiv:2409.02380 · doi:10.1103/PhysRevB.110.064510
Abstract
The orthorhombic molybdenum carbide superconductor with = 3.2 K was investigated by muon-spin rotation and relaxation (SR) measurements and by first-principle calculations. The low-temperature superfluid density, determined by transverse-field SR, suggests a fully-gapped superconducting state in MoC, with a zero-temperature gap = 0.44 meV and a magnetic penetration depth = 291 nm. The time-reversal symmetry is preserved in the superconducting state, as confirmed by the absence of an additional muon-spin relaxation in the zero-field SR spectra. Band-structure calculations indicate that the density of states at the Fermi level is dominated by the Mo -orbitals, which are marginally hybridized with the C -orbitals over a wide energy range. The symmetry analysis confirms that, in the absence of spin-orbit coupling (SOC), MoC hosts twofold-degenerate nodal surfaces and fourfold-degenerate nodal lines. When considering SOC, the fourfold-degenerate nodal lines cross the Fermi level and contribute to the electronic properties. Our results suggest that, similarly to other phases of carbides, also the orthorhombic transition-metal carbides host topological nodal states and may be potential candidates for future studies of topological superconductivity.
10 pages, 8 figures
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