paper

Interlayer Coupling Driven High-Temperature Superconductivity in LaNiO Under Pressure

arXiv:2307.14965 · doi:10.1103/PhysRevLett.132.146002

Abstract

The newly discovered high-temperature superconductivity in LaNiO under pressure has attracted a great deal of attentions. The essential ingredient characterizing the electronic properties is the bilayer NiO planes coupled by the interlayer bonding of orbitals through the intermediate oxygen-atoms. In the strong coupling limit, the low energy physics is described by an intralayer antiferromagnetic spin-exchange interaction between orbitals and an interlayer one between orbitals. Taking into account Hund's rule on each site and integrating out the spin degree of freedom, the system reduces to a single-orbital bilayer - model based on the orbital. By employing the slave-boson approach, the self-consistent equations for the bonding and pairing order parameters are solved. Near the physically relevant -filling regime (doping ), the interlayer coupling tunes the conventional single-layer -wave superconducting state to the -wave one. A strong could enhance the inter-layer superconducting order, leading to a dramatically increased . Interestingly, there could exist a finite regime in which an state emerges.

Version accepted by Phys. Rev. Lett

Interlayer Coupling Driven High-Temperature Superconductivity in La$_3$Ni$_2$O$_7$ Under Pressure · wovepaper