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Electronic structure, dimer physics, orbital-selective behavior, and magnetic tendencies in the bilayer nickelate superconductor La3Ni2O7 under pressure

Yang Zhang, Ling-Fang Lin, Adriana Moreo, Elbio Dagotto

DOI 10.1103/PhysRevB.108.L180510 · Physical Review B

T1

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Abstract

Motivated by the recently reported high-temperature superconductivity in the bilayer La3Ni2O7 (LNO) under pressure, here we comprehensively study this system using ab initio techniques. The Ni 3d orbitals have a large bandwidth at ambient pressure, increasing by ∼22% at 29.5 GPa. Without electronic interactions, the Ni d3z2−r2 orbitals form a bonding-antibonding molecular orbital state via the O pz inducing a “dimer” lattice in the LNO bilayers. The Fermi surface consists of two-electron sheets with mixed eg orbitals and a hole pocket defined by the d3z2−r2 orbital, suggesting a Ni two-orbital minimum model. Different from the infinite-layer nickelate, we obtained a large interorbital hopping between d3z2−r2 and dx2−y2 states in LNO, caused by the ligand “bridge” of in-plane O px or py orbitals connecting those two orbitals, inducing d−p σ-bonding characteristics. The competition between the intraorbital and interorbital hoppings leads to an interesting dominant spin stripe (π,0) order because of bond ferromagnetic tendencies via the recently discussed “half-empty” mechanism.

Source-reported materials — not catalogue approval

FormulaReported Tc (K)Pressure (GPa)Type
NdNiO2

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15Pressure not reportedunknown
Nd6Ni5O12

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13Pressure not reportedunknown
La3Ni2O7

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8014 GPaonset

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