Octupolar Weyl Superconductivity from Electron-electron Interaction
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 symmetry with both weak- and strong-coupling approaches. The dominant pairing symmetries belong to the two-dimensional representation at low and intermediate doping levels, and the complex mixing gap function of the -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 (e.g He-A) and under the planar hexagonal symmetry. Instead, they develop the octupolar component of OAM, which results in 8 nodal points along the body diagonal directions exhibiting an alternating distribution of monopole charges . 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.
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