English

Classification of multipole superconductivity in multi-orbital systems and its implications

Superconductivity 2016-11-28 v1 Strongly Correlated Electrons

Abstract

Motivated by a growing interest in multi-orbital superconductors with spin-orbit interactions, we perform the group-theoretical classification of various unconventional superconductivity emerging in symmorphic O\rm O, D4\rm D_4, and D6\rm D_6 space groups. The generalized Cooper pairs, which we here call "multipole" superconductivity, possess spin-orbital coupled (multipole) degrees of freedom, instead of the conventional spin singlet/triplet in single-orbital systems. From the classification, we obtain the following key consequences, which have been overlooked in the long history of research in this field: (1) A superconducting gap function with Γ9Γ9\varGamma_9\otimes\varGamma_9 in D6\rm D_6 possesses nontrivial momentum dependence, different from the usual spin 1/2 classification. (2) Unconventional gap structure can be realized in the BCS approximation of purely local (on-site) interactions irrespective of attractive/repulsive. It implies the emergence of an electron-phonon (e-ph) driven unconventional superconductivity. (3) Reflecting symmetry of orbital basis functions, there appear not symmetry-protected but inevitable line nodes/gap minima, and thus, anisotropic ss-wave superconductivity can be naturally explained without any competitive fluctuations.

Keywords

Cite

@article{arxiv.1607.02716,
  title  = {Classification of multipole superconductivity in multi-orbital systems and its implications},
  author = {Takuya Nomoto and Kazumasa Hattori and Hiroaki Ikeda},
  journal= {arXiv preprint arXiv:1607.02716},
  year   = {2016}
}

Comments

18 pages, 4 figures, 7 tables

R2 v1 2026-06-22T14:50:17.115Z