English

Intertwined Superconductivity and Magnetism from Repulsive Interactions in Kondo Bilayers

Strongly Correlated Electrons 2024-08-07 v1

Abstract

While superconductors are conventionally established by attractive interactions, higher-temperature mechanisms for emergent electronic pairing from strong repulsive electron-electron interactions remain under considerable scrutiny. Here, we establish a strong-coupling mechanism for intertwined superconductivity and magnetic order from purely repulsive interactions in a Kondo-like bilayer system, composed of a two-dimensional Mott insulator coupled to a layer of weakly-interacting itinerant electrons. Combining large scale DMRG and Monte Carlo simulations, we find that superconductivity persists and coexists with magnetism over a wide range of interlayer couplings. We classify the resulting rich phase diagram and find 2-rung antiferromagnetic and 4-rung antiferromagnetic order in one-dimensional systems along with a phase separation regime, while finding that superconductivity coexists with either antiferromagnetic or ferromagnetic order in two dimensions. Remarkably, the model permits a rigorous strong-coupling analysis via localized spins coupled to charge-2e bosons through Kugel-Khomskii interactions, capturing the pairing mechanism in the presence of magnetism due to emergent attractive interactions. Our numerical analysis reveals that pairing remains robust well beyond the strong-coupling regime, establishing a new mechanism for superconductivity in coupled weakly- and strongly-interacting electron systems, relevant for infinite-layer nickelates and superconductivity in moire multilayer heterostructures.

Keywords

Cite

@article{arxiv.2408.02847,
  title  = {Intertwined Superconductivity and Magnetism from Repulsive Interactions in Kondo Bilayers},
  author = {Clara S. Weber and Dominik Kiese and Dante M. Kennes and Martin Claassen},
  journal= {arXiv preprint arXiv:2408.02847},
  year   = {2024}
}

Comments

19 pages, 18 figures

R2 v1 2026-06-28T18:04:50.592Z