Opposite-Mirror-Parity Scattering as the Origin of Superconductivity in Strained Bilayer Nickelates
arXiv:2501.14665
Abstract
We study the electronic structure and doping-dependent instabilities of strained LaNiO thin films using first-principles and functional renormalization group methods. We demonstrate that ordering tendencies are governed by Fermi surface scattering between electrons of opposite mirror parity. Under moderate hole doping, when the bonding band becomes incipient or crosses the Fermi level, robust -wave superconductivity emerges from cooperative interlayer pairing reinforced by two competing spin-density-wave fluctuations. Compressive strain favors superconductivity in NiO bilayers slightly away from the interface, whereas tensile strain induces pair-breaking nesting that suppresses pairing. Our results establish a unified microscopic scenario for superconductivity in pressurized bulk and strained thin-film nickelates, providing new insights into high-T pairing in correlated quantum materials.
6 pages, 4 figures+SM