Generalized Spin Fluctuation Feedback In Correlated Fermion Superconductors
Abstract
Experiments reveal that the superconductors , and undergo two superconducting transitions in the absence of an applied magnetic field. The prevalence of these multiple transitions suggests a common underlying mechanism. A natural candidate theory which accounts for these two transitions is the existence of a small symmetry breaking field, however such a field has not been observed in or and has been called into question for . Motivated by arguments originally developed for superfluid we propose that a generalized spin fluctuation feedback effect is responsible for these two transitions. We first develop a phenomenological theory for that couples spin fluctuations to superfluidity, which correctly predicts that a high temperature broken time-reversal superfluid phase can emerge as a consequence. The transition at lower temperatures into a time-reversal invariant superfluid phase must then be first order by symmetry arguments. We then apply this phenomenological approach to the three superconductors , and revealing that this naturally leads to a high-temperature time-reversal invariant nematic superconducting phase, which can be followed by a second order phase transition into a broken time-reversal symmetry phase, as observed.
Cite
@article{arxiv.1910.10780,
title = {Generalized Spin Fluctuation Feedback In Correlated Fermion Superconductors},
author = {Adil Amin and D. F. Agterberg},
journal= {arXiv preprint arXiv:1910.10780},
year = {2020}
}