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Effective model and pairing tendency in bilayer Ni-based superconductor La$_3$Ni$_2$O$_7$
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abstract
Since the discovery of cuprate, the origin of high-T$_c$ superconductivity has been an outstanding puzzle. Recently, high-T$_c$ superconductivity was observed in a bilayer nickelate La$_3$Ni$_2$O$_7$ under pressure, whose structure hosts the apical oxygen between two layers, distinct from multi-layer cuprates. Motivated by this discovery, we investigate its electronic structure using first-principle calculations and superconducting instabilities from both weak-coupling and strong-coupling perspective. Based on the first-principle band structures, we construct a bilayer two-orbital model on a square lattice, consisting of $d_{x^2-y^2}$ and $d_{z^2}$ orbitals, which accurately captures the low-energy electronic properties. Within this model, we study pairing instability using both functional renormalization group approach and multi-orbital t-J model. An $s_{\pm}$-wave pairing with sign-reversal gaps on different Fermi surfaces is revealed, reminiscent of iron based superconductors. The Ni-$d_{z^2}$ orbital and its associated interlayer and intralayer exchange couplings are found to be crucial for the high-T$_c$ superconductivity. Our study provides valuable insights into unique nature of electronic structure and superconductivity in La$_3$Ni$_2$O$_7$ and contributes to the understanding of unconventional superconductors.
Forward citations
Cited by 3 Pith papers
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Multiorbital character of the density wave in trilayer nickelate superconductors
Polarized Raman scattering on trilayer nickelate La4Ni3O10 identifies 114 meV as the density wave gap, with a multiorbital origin involving both Ni-3d orbitals.
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In-Plane Ni-O-Ni Bond Angles as Structural Fingerprints of Superconductivity in Layered Nickelates: Effects of Pressure, Strain, Layering, and Correlations
The in-plane Ni-O-Ni bond angle in layered nickelates tracks the experimental superconducting Tc dome under pressure and strain, suggesting it as a structural fingerprint.
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Examining density wave correlations in high pressure $\rm{La_3Ni_2O_7}$ through variational Monte Carlo
VMC on the high-pressure La3Ni2O7 bilayer model shows (pi,pi) in-plane spin/charge correlations, but the claimed inter-layer CDW transition to (pi,pi,0) is contradicted by the paper's own sign convention.
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