Time-reversal symmetry breaking in superconductors through loop super-current order
Abstract
We propose a superconducting instability where microscopic supercurrent loops form spontaneously within a unit cell at the superconducting transition temperature with only uniform, onsite and intra-orbital singlet pairing. As a result of the circulating currents time-reversal symmetry is spontaneously broken in the superconducting state. Using Ginzburg-Landau theory, we describe in detail how these currents emerge in a toy model. We discuss the crystallographic symmetry requirements to realize such a state and show that they are met by the Re6X (X=Zr, Hf, Ti) family of time-reversal symmetry breaking, but otherwise seemingly conventional, superconductors. We estimate an upper bound for the resulting internal fields and find it to be consistent with recent muon-spin relaxation experiments.
Cite
@article{arxiv.1803.02618,
title = {Time-reversal symmetry breaking in superconductors through loop super-current order},
author = {Sudeep Kumar Ghosh and James F. Annett and Jorge Quintanilla},
journal= {arXiv preprint arXiv:1803.02618},
year = {2021}
}
Comments
10 pages, 3 figures (More references added)