Atomic-layer Rashba-type superconductor protected by dynamic spin-momentum locking
arXiv:2103.07143 · doi:10.1038/s41467-021-21642-1
Abstract
Spin-momentum locking is essential to the spin-split Fermi surfaces of inversion-symmetry broken materials, which are caused by either Rashba-type or Zeeman-type spin-orbit coupling (SOC). While the effect of Zeeman-type SOC on superconductivity has experimentally been shown recently, that of Rashba-type SOC remains elusive. Here we report on convincing evidence for the critical role of the spin-momentum locking on crystalline atomic-layer superconductors on surfaces, for which the presence of the Rashba-type SOC is demonstrated. In-situ electron transport measurements reveal that in-plane upper critical magnetic field is anomalously enhanced, reaching approximately three times the Pauli limit at . Our quantitative analysis clarifies that dynamic spin-momentum locking, a mechanism where spin is forced to flip at every elastic electron scattering, suppresses the Cooper pair-breaking parameter by orders of magnitude and thereby protects superconductivity. The present result provides a new insight into how superconductivity can survive the detrimental effects of strong magnetic fields and exchange interactions.
This is a post-peer-review, pre-copyedit version of an article published in Nature Communications. The final authenticated version is available online at: http://dx.doi.org/10.1038/s41467-021-21642-1
References in corpus (7)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Silicon surface with giant spin-splitting
- Theory of 2D superconductor with broken inversion symmetry
- Two-dimensional Superconductors with Atomic-scale Thicknesses
- Imaging Josephson Vortices on the Surface Superconductor Si(111)-(root7xroot3)-In using a Scanning Tunneling Microscope
- Upper critical field in noncentrosymmetric superconductors
- Topological thermoelectric effects in spin-orbit coupled electron and hole doped semiconductors