paper

Competing Interlayer Loop Currents and Superconductivity in the Bilayer -- Model

arXiv:2609.10926

Abstract

The recent discovery of high- superconductivity in pressurized and thin-film bilayer nickelates, featuring a strong interlayer exchange coupling, and their potential similarities with cuprate superconductors, has made this a very active topic in condensed matter physics. In the present paper we study the strongly correlated one-orbital () bilayer -- model for nickelates, where denotes the Coulomb interactions, using a controlled large- expansion at and beyond the mean-field level. Focusing on the out-of-plane spin exchange interaction (), we find that it triggers both out-of-plane -wave superconductivity and an out-of-plane bond-order phase (-BOP) instability. The -BOP gives rise to a complex -axis hopping dominated by its imaginary component, which drives out-of-plane currents and induces in-plane ones, spontaneously forming on the vertical plaquettes a loop-current state that breaks time-reversal symmetry. Competition between this loop-current phase and superconductivity yields a dome-shaped superconducting region, with optimal superconductivity occurring near the -BOP quantum critical point. The resulting phase diagram features a pure loop-current region, a low-doping coexistence phase, a pure superconducting state at higher doping, and a correlated metallic state.

Competing Interlayer Loop Currents and Superconductivity in the Bilayer $t$-$J_\perp$-$V$ Model · wovepaper