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Octupolar Weyl Superconductivity from Electron-electron Interaction

Superconductivity 2025-06-19 v2 Strongly Correlated Electrons

Abstract

Unconventional superconductivity arising from electron-electron interaction can manifest exotic symmetry and topological properties. We investigate the superconducting pairing symmetry problem based on the 3D cubic OhO_h symmetry with both weak- and strong-coupling approaches. The dominant pairing symmetries belong to the two-dimensional EgE_g representation at low and intermediate doping levels, and the complex mixing gap function of the d3z2r2+idx2y2d_{3z^2-r^2}+id_{x^2-y^2}-type is energetically favored in the ground state. Cooper pairs with such a symmetry do not possess orbital angular momentum (OAM) moments, which is different from other time-reversal symmetry breaking pairings such as px+ipyp_x+ip_y (e.g 3^3He-A) and dx2y2+idxyd_{x^2-y^2}+id_{xy} under the planar hexagonal symmetry. Instead, they develop the octupolar OxyzO_{xyz} component of OAM, which results in 8 nodal points along the body diagonal directions exhibiting an alternating distribution of monopole charges ±1\pm 1. This leads to an intriguing 3D Weyl topological SC, which accommodates nontrivial surface states of Majorana arcs. Our results appeal for material realizations and experimental tests in optical lattices.

Keywords

Cite

@article{arxiv.2411.06932,
  title  = {Octupolar Weyl Superconductivity from Electron-electron Interaction},
  author = {Zhiming Pan and Chen Lu and Fan Yang and Congjun Wu},
  journal= {arXiv preprint arXiv:2411.06932},
  year   = {2025}
}

Comments

7+9 pages, 3+3 figures

R2 v1 2026-06-28T19:55:28.821Z