Doping-driven evolution of pairing symmetry in pressurized LaNiO
arXiv:2608.29091
Abstract
We investigate the superconducting pairing symmetry and its doping evolution in pressurized LaNiO. For the undoped compound, the most favorable pairing state is found to be -wave, characterized by sign reversal of the gap functions between the Fermi pockets. A detailed analysis of the pairing interactions reveals that this unconventional state originates from repulsive interactions mediated by the magnetic odd modes of the bilayer nickelate. Upon hole doping, the Fermi pocket expands, which amplifies the intrapocket repulsions on this pocket. These repulsions, driven by the magnetic even modes, gradually dominates the pairing interactions and ultimately drive a transition in pairing symmetry from -wave to -wave in the heavily hole-doped regime. In stark contrast, the -wave pairing persists under electron doping, even deep into the heavily electron-doped regime where a Lifshitz transition occurs. This finding suggests that the Fermi pocket is not essential for the emergence of superconductivity in bilayer nickelates. In fact, the -wave pairing becomes more robust in the absence of the pocket, as spin fluctuations are strongly enhanced by the favorable nesting between the and pockets --- a condition guaranteed by Luttinger's theorem and the Fermi surface topology. We believe that exploring the doping evolution of superconducting pairing will open a new realm for testing the pairing mechanism in pressurized LaNiO.
8 pages, 5 figures