English

Knight Shift and Leading Superconducting Instability From Spin Fluctuations in Sr2RuO4

Superconductivity 2019-12-16 v1 Strongly Correlated Electrons

Abstract

Recent nuclear magnetic resonance studies [A. Pustogow {\it et al.}, arXiv:1904.00047] have challenged the prevalent chiral triplet pairing scenario proposed for Sr2_2RuO4_4. To provide guidance from microscopic theory as to which other pair states might be compatible with the new data, we perform a detailed theoretical study of spin-fluctuation mediated pairing for this compound. We map out the phase diagram as a function of spin-orbit coupling, interaction parameters, and band-structure properties over physically reasonable ranges, comparing when possible with photoemission and inelastic neutron scattering data information. We find that even-parity pseudospin singlet solutions dominate large regions of the phase diagram, but in certain regimes spin-orbit coupling favors a near-nodal odd-parity triplet superconducting state, which is either helical or chiral depending on the proximity of the γ\gamma band to the van Hove points. A surprising near-degeneracy of the nodal ss^\prime- and dx2y2d_{x^2-y^2}-wave solutions leads to the possibility of a near-nodal time-reversal symmetry broken s+idx2y2s^\prime+id_{x^2-y^2} pair state. Predictions for the temperature dependence of the Knight shift for fields in and out of plane are presented for all states.

Keywords

Cite

@article{arxiv.1905.04782,
  title  = {Knight Shift and Leading Superconducting Instability From Spin Fluctuations in Sr2RuO4},
  author = {A. T. Rømer and D. D. Scherer and I. M. Eremin and P. J. Hirschfeld and B. M. Andersen},
  journal= {arXiv preprint arXiv:1905.04782},
  year   = {2019}
}

Comments

5 pages (3 figures) + supplementary information