Numerically Exact Study of Flat-Band Superconductivity
Abstract
Current theories of high-temperature superconductivity in flat-band systems predict a linear dependence of the transition temperature on the attractive interaction, . However, neither the value of nor the full nonlinear curve -- with a maximum at large -- is known beyond mean-field and quantum geometry estimates. Using a controlled diagrammatic Monte Carlo technique, we trace the onset of superfluid response in the Lieb lattice with attractive Hubbard interaction. Focusing on the half-filled flat-band case, where the ordering mechanism differs fundamentally from both BCS and preformed Cooper pair scenarios, we find that the pairing response diverges linearly with decreasing temperature over a broad range of , leading to a sharp crossover to long-range correlations at a characteristic temperature , which provides a controlled upper bound on . The highest occurs when all three bands touch at a single momentum point, potentially corresponding to high values.
Cite
@article{arxiv.2604.05997,
title = {Numerically Exact Study of Flat-Band Superconductivity},
author = {I. S. Tupitsyn and B. Currie and B. V. Svistunov and E. Kozik and N. V. Prokof'ev},
journal= {arXiv preprint arXiv:2604.05997},
year = {2026}
}
Comments
5 pages, 2 pages Appendix, 6 figures