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Superconductivity in the Bilayer Two-orbital Hubbard Model

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arxiv 2312.03605 v2 pith:BPQOFMQK submitted 2023-12-06 cond-mat.str-el cond-mat.supr-con

classification cond-mat.str-elcond-mat.supr-con
keywords superconductivityorbitalshubbardlayersmathrmmodelpairingperp
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abstract

Motivated by the recently discovered high $T_c$ nickelate superconductor $\mathrm{La_3Ni_2O_7}$, we investigate superconductivity in a two dimensional Hubbard model on square lattice that consists of two layers of hybridizing $d_{x^2-y^2}$ and $d_{z^2}$ orbitals. Employing cluster dynamical mean-field theory, we establish phase diagrams resolving the crucial dependence of superconducting $T_c$ on electron hybridization $V$ between $d_{x^2-y^2}$ and $d_{z^2}$ orbitals at the same layer, and on the hopping $t_{\perp}$ between two $d_{z^2}$ orbitals at different layers. $V$ and $t_{\perp}$ are presumably linked to the pairing phase coherence, and "pairing glue" of the system respectively. Our result favors a two-component theory explanation of superconductivity in a composite system. The influence of the pseudogap effect and Hund's coupling on superconductivity are discussed, and also the implication of our result to the understanding of $\mathrm{La_3Ni_2O_7}$ superconductivity.

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  1. Orbital-selective electron correlations in high-$T_{\rm c}$ bilayer nickelates: from a global phase diagram to implications for spectroscopy

    cond-mat.supr-con 2024-12 conditional novelty 7.0 of 10

    A bilayer two-orbital Hubbard model of La3Ni2O7 shows orbital-selective correlations, with z2 electrons forming interlayer singlets, that reproduce key ARPES and optical conductivity features.

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