Synthesizing Strong-Coupling Kohn-Luttinger Superconductivity in 2D Van der Waals materials
Abstract
The Kohn-Luttinger (KL) mechanism of pairing, which describes superconductivity emergent from repulsive interactions, typically yields Cooper pairs at high angular-momentum () and extremely low transition temperatures (). Here, we reveal an inter-layer s-wave () KL superconductivity with greatly elevated in a multi-layer Hubbard model, which prototypes stacked two-dimensional (2D) electrons in layered van der Waals materials. By employing determinant quantum Monte Carlo and dynamical mean-field theory simulations, we show that a strong pairing attraction , without the mediation of collective modes, can emerge between inter-layer electrons in the system. As inter-layer repulsion increases, evolves from a conventional KL relation of , to a linear strong-coupling scaling of , resulting in enhanced superconductivity at large . This strong-coupling KL pairing is robust against changes in lattice geometries and dimensionalities, and it can persist, in the presence of a large remnant Coulomb repulsion between pairing electrons. Using \textit{ab initio} calculations, we propose a few 2D layered van der Waals materials that can potentially realize and control this unconventional superconductivity.
Keywords
Cite
@article{arxiv.2601.13074,
title = {Synthesizing Strong-Coupling Kohn-Luttinger Superconductivity in 2D Van der Waals materials},
author = {Shi-Cong Mo and Hongyi Yu and Wéi Wú},
journal= {arXiv preprint arXiv:2601.13074},
year = {2026}
}
Comments
5+5 pages, 8 figures