A path to superconductivity via strong short-range repulsion in a spin-polarized band
Abstract
We predict that the spin-polarized electrons in a two-dimensional triangular lattice with strong electron-electron repulsion gives rise to f-wave pairing. The key point is that the first-order interaction, which is usually pair-breaking, vanishes or nearly vanishes in certain f-wave channels due to symmetry constraints. As a result, these f-wave pairing channels are governed by the subleading-order processes which enable pairing when the perturbation theory is controlled. We illustrate this using the Hubbard model on the triangular lattice with on-site and nearest-neighbor repulsion, where we find a of electron's bandwidth. For a general screened interaction, the same idea works asymptotically, but a third-order calculation is needed to fully determine the strength of f-wave pairing.
Keywords
Cite
@article{arxiv.2511.17466,
title = {A path to superconductivity via strong short-range repulsion in a spin-polarized band},
author = {Zhiyu Dong and Patrick A. Lee},
journal= {arXiv preprint arXiv:2511.17466},
year = {2026}
}
Comments
This version corrects the results on the nearest-neighbor Hubbard model and the analysis of the generic screened-repulsion problem