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Knight Shift and Leading Superconducting Instability From Spin Fluctuations in Sr<sub>2</sub>RuO<sub>4</sub>

Invited

Abstract

The chiral triplet pairing scenario proposed for Sr2RuO4 has been challenged by recent nuclear magnetic resonance (NMR) studies [A. Pustogow et al., arXiv:1904.00047 and K. Ishida et al., arXiv:1907.12236]. We perform a detailed theoretical study of spin-fluctuation mediated superconductivity guided by the spin-fluctuation spectrum measured from neutron scattering of this compound. Nodal even-parity solutions as well as odd-parity states with spins aligned predominantly out of the RuO2 planes are found, both of which are compatible with the new data. The usual odd-parity state with spins primarily in the plane, the chiral kx+iky, is difficult to stabilize and in contradiction to both NMR and neutron experiments. The presence of nodes in the spectral gap appears as a common feature for both even- and odd parity gaps. A surprising near-degeneracy of the nodal s′ and dx2-y2-wave solutions suggests the possibility of a near-nodal time-reversal symmetry broken s′ +idx2-y2 pair state. Finally we discuss local signatures of such a state near nonmagnetic disorder, as well as the possibility of induced SDW in vicinity of impurities and under strain.

Presenters

  • Astrid Rømer

    Niels Bohr Institute, University of Copenhagen

Authors

  • Astrid Rømer

    Niels Bohr Institute, University of Copenhagen

  • Ilya Eremin

    Institut für Theoretische Physik III, Ruhr-Universität Bochum, Ruhr-Universität Bochum, Ruhr-Universitat Bochum

  • Peter Hirschfeld

    University of Florida, Department of Physics, University of Florida

  • Brian M Andersen

    Niels Bohr Institute, University of Copenhagen, Niels Bohr Institute