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Electronic structure and two-orbital model of the quadlayer La5Ni4O13

Jian-Xiang Sun, Haokan Xiao, Cui-Qun Chen, Dao-Xin Yao

cond-mat.supr-conarXiv:2610.00489

Abstract

The discovery of pressure-induced superconductivity in Ruddlesden--Popper (RP) nickelates has stimulated extensive interest in high-Tc superconductors. Here, we systematically study the electronic properties of the quadlayer RP nickelate La5Ni4O13 under ambient pressure, 5% isotropic compressive strain, and 4% c-axis uniaxial strain using density functional theory (DFT) and random phase approximation (RPA) calculations. DFT calculations show that isotropic strain broadens the Ni-eg bands and induces charge transfer from O-p to Ni-d orbitals, whereas c-axis uniaxial strain selectively shifts the dz2-derived bonding1 band upward while leaving the dx2-y2 dispersion nearly unchanged. From Wannier downfolding, we construct a quadlayer two-orbital model that reproduces the low-energy Ni-eg bands. Our model reveals that under ambient pressure and 5% isotropic strain, the Fermi surface consists of two electron pockets (α and δ) and three hole pockets (β, β, and β ), while under uniaxial strain, a γ hole pocket with dz2 orbital character emerges. RPA calculations reveal that the leading spin response shifts from q≈(2π/3,2π/3) at ambient pressure to q≈(π,π) under both strain conditions and is enhanced under c-axis compression. These results suggest that c-axis compression may provide a favorable route to superconductivity in the quadlayer nickelate analogous to that in bilayer and trilayer nickelates.

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