paper

Superconductivity in kagome metals due to soft loop-current fluctuations

arXiv:2507.16892 · doi:10.1038/s41467-026-72806-w

Abstract

We demonstrate that soft fluctuations of translation symmetry-breaking loop currents provide a mechanism for unconventional superconductivity in kagome metals that naturally addresses the multiple superconducting phases observed under pressure. Focusing on the rich multi-orbital character of these systems, we show that loop currents involving both vanadium and antimony orbitals generate low-energy collective modes that couple efficiently to electrons near the Fermi surface and mediate attractive interactions in two distinct unconventional pairing channels. While loop-current fluctuations confined to vanadium orbitals favor chiral superconductivity, which spontaneously breaks time-reversal symmetry, the inclusion of antimony orbitals stabilizes an state that is robust against disorder. We argue that these two states are realized experimentally as pressure increases and the antimony-dominated Fermi surface sheet undergoes a Lifshitz transition.

13 + 16 pages; 6+10 figures

Superconductivity in kagome metals due to soft loop-current fluctuations · wovepaper