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    Excitonic correlations in the equilibrium and voltage-biased bilayer Hubbard model: Multiorbital two-particle self-consistent approach

    Jiawei Yan1,2, Jonas B. Profe3, Yuta Murakami4,5, and Philipp Werner2

    Phys. Rev. B 113, 165120 – Published 13 April, 2026

    DOI: https://doi.org/10.1103/slwv-5zlg

    Abstract

    We develop a nonequilibrium multiorbital extension of the two-particle self-consistent theory and apply it to the bilayer Hubbard model as a minimal platform to investigate correlation effects in the presence of interlayer interactions and tunneling. The method determines vertex corrections in the spin and charge channels self-consistently at the two-particle level, thereby avoiding the spurious finite-temperature phase transitions that limit dynamical mean-field theory in two dimensions. We derive the spectral self-energy and implement the framework directly on the real-frequency axis within the Keldysh nonequilibrium Green's function formalism, enabling the treatment of both equilibrium and nonequilibrium steady states without relying on numerical analytic continuation. As an application, we demonstrate that a pseudogap can emerge in the bilayer Hubbard model when spin, charge, or excitonic fluctuations become sufficiently strong. Instabilities in different channels are also evaluated in an unbiased manner across the parameter space. Remarkably, we find that the excitonic susceptibility grows with increasing interlayer bias, before it gets suppressed at large biases by the charge imbalance between the layers. This work establishes a versatile and computationally efficient framework for investigating correlated multiorbital systems under nonequilibrium conditions.

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