Effect of Spin-Orbit Interaction in Spin-Triplet Superconductor: Structure of -vector and Anomalous O-NQR Relaxation in SrRuO
arXiv:1001.2999 · doi:10.1143/JPSJ.79.024714
Abstract
Supposing the spin-triplet superconducting state of SrRuO, the spin-orbit (SO) coupling associated with relative motion in Cooper pairs is calculated by extending the method for the dipole-dipole coupling given by Leggett in the superfluid He. It is shown that the SO coupling works only in the equal-spin pairing (ESP) state to make the pair angular momentum and the pair spin angular momentum parallel with each other. The SO coupling gives rise to the internal Josephson effect in a chiral ESP state as in superfluid A-phase of He with a help of an additional anisotropy arising from SO coupling of atomic origin which works to direct the {\bf d}-vector into -plane. This resolves the problem of the anomalous relaxation of O-NQR and the structure of {\bf d}-vector in SrRuO.
Accepted for publication in J. Phys. Soc. Jpn. vol.79 (2010), No.2 (February issue); 18 pages, 2 figures
References in corpus (3)
- Microscopic Identification of the D-vector in Triplet Superconductor Sr_2RuO_4
- Triplet Pairing Superconductivity Induced by Short-Range Ferromagnetic Correlations in SrRuO
- Dipole Interaction in Triplet Superconductivity with Horizontal Line Nodes; Orientation of the Superconducting Order Parameter in Sr2RuO4
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