Materials with a kagome lattice host exotic quantum phenomena driven by the interplay between band topology, spin–orbit coupling, magnetism, and electronic correlations. While the magnetism of kagome materials has been widely investigated, their unconventional superconductivity (SC) remains largely unexplored due to the limited availability of suitable materials.
Here, we report evidence of unconventional SC in the ScIr2−𝑥Si𝑥 family by combining muon-spin spectroscopy measurements with band-structure calculations. The parent ScIr2 undergoes a structural phase transition from a high-𝑇 cubic- to a low-𝑇 rhombohedral phase, while the Ir kagome layer remains, albeit slightly, distorted. Although the structural transition is suppressed by Si substitution, the superconducting pairing of ScIr2−𝑥Si𝑥 remains well described by a two-gap model.
Since at least one of the gaps exhibits nodes, this indicates an unconventional SC. Its unconventional nature can be explained by the distinct flat bands occurring near the Fermi level, leading to strong electronic correlations in the ScIr2−𝑥Si𝑥 family. Mor over, the low-𝑇 phase of ScIr2 exhibits an Ir chiral chain; therefore, it can be classified as a topological chiral crystal. Overall, the unusual properties of the ScIr2−𝑥Si𝑥 family make it an interesting, albeit rare, system for studying the interplay between unconventional SC, flat bands, and chirality.