Spin-orbit-parity coupled superconductivity in topological monolayer WTe
arXiv:2005.08007 · doi:10.1103/PhysRevLett.125.107001
Abstract
Recent experiments reported gate-induced superconductivity in the monolayer 1T-WTe which is a two-dimensional topological insulator in its normal state [1, 2]. The in-plane upper critical field is found to exceed the conventional Pauli paramagnetic limit by 1-3 times. The enhancement cannot be explained by conventional spin-orbit coupling which vanishes due to inversion symmetry. In this work, we unveil some distinctive superconducting properties of centrosymmetric 1T-WTe which arise from the coupling of spin, momentum and band parity degrees of freedom. As a result of this spin-orbit-parity coupling: (i) there is a first-order superconductor-metal transition at much higher than the Pauli paramagnetic limit , (ii) spin-susceptibility is anisotropic with respect to in-plane directions and results in anisotropic and (iii) the exhibits a strong gate dependence as the spin-orbit-parity coupling is significant only near the topological band crossing points. The importance of SOPC on the topologically nontrivial inter-orbital pairing phase is also discussed. Our theory generally applies to centrosymmetric materials with topological band inversions.
5 pages, 4 figures. Comments are welcome
References in corpus (5)
- Quantum Spin Hall Effect and Topological Field Effect Transistor in Two-Dimensional Transition Metal Dichalcogenides
- Observation of the Quantum Spin Hall Effect up to 100 Kelvin in a Monolayer Crystal
- Parity-breaking phases of spin-orbit-coupled metals with gyrotropic, ferroelectric and multipolar orders
- Enhancement of the upper critical field in disordered transition metal dichalcogenide monolayers
- Pseudospin bases for a model of Cu:BiSe