Transition from -wave to -wave superconductivity driven by interlayer interaction in the bilayer two-orbital model of LaNiO
arXiv:2503.15038 · doi:10.1103/PhysRevB.111.104505
Abstract
We utilize the fluctuation-exchange approximation on a bilayer two-orbital model, incorporating and orbitals, to explore potential pairing symmetries in the bilayer nickelate LaNiO. Our study particularly examines the impact of interlayer Coulomb interactions. In the absence of these interactions, the superconducting gap exhibits -wave symmetry, with predominant intraorbital pairing in the orbital. As interlayer interactions increase, -wave superconductivity is suppressed, while the superconductivity with a -wave gap is enhanced, resulting in a transition at a critical interaction strength. This -wave superconductivity is distinct not only from the -wave superconductivity but also from the intraorbital -wave pairing in cuprate superconductors, as it is dominated by the interlayer pairing between the and orbitals. Additionally, charge fluctuations play a crucial role in driving the transition from wave to wave superconductivity. Our findings indicate that interlayer Coulomb interactions are crucial for understanding the pairing mechanism in LaNiO.
11 pages, 8 figures