paper

Nodeless time-reversal symmetry breaking in the centrosymmetric superconductor ScCoSi probed by muon-spin spectroscopy

arXiv:2205.09609 · doi:10.1103/PhysRevMaterials.6.064802

Abstract

We investigate the superconducting properties of ScCoSi using low-temperature resistivity, magnetization, heat capacity, and muon-spin rotation and relaxation (SR) measurements. We find that ScCoSi {exhibits type-II} superconductivity with a superconducting transition temperature \,K. The temperature dependence of the superfluid density obtained from transverse-field SR spectra is best modeled using an isotropic Bardeen-Cooper-Schrieffer type -wave gap symmetry with . However, the zero-field muon-spin relaxation asymmetry reveals the appearance of a spontaneous magnetic field below , indicating that time-reversal symmetry (TRS) is broken in the superconducting state. Although this behavior is commonly associated with non-unitary or mixed singlet-triplet pairing, our group-theoretical analysis of the Ginzburg-Landau free energy alongside density functional theory calculations indicates that unconventional mechanisms are pretty unlikely. Therefore, we have hypothesized that TRS breaking may occur via a conventional electron-phonon process.

9 pages, 6 figures

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