arXiv · 2101.10965
Pairing correlations in the cuprates: a numerical study of the three-band Hubbard model
Abstract
We study the three-band Hubbard model for the copper oxide plane of the high-temperature superconducting cuprates using determinant quantum Monte Carlo and the dynamical cluster approximation (DCA) and provide a comprehensive view of the pairing correlations in this model using these methods. Specifically, we compute the pair-field susceptibility and study its dependence on temperature, doping, interaction strength, and charge-transfer energy. Using the DCA, we also solve the Bethe-Salpeter equation for the two-particle Green's function in the particle-particle channel to determine the transition temperature to the superconducting phase on smaller clusters. Our calculations reproduce many aspects of the cuprate phase diagram and indicate that there is an "optimal" value of the charge-transfer energy for the model where $T_c$ is largest. These results have implications for our understanding of superconductivity in both the cuprates and other doped charge-transfer insulators.
Explore related subjects
Keep this discovery
Peizhi Mai, Giovanni Balduzzi, Steven Johnston, Thomas A. Maier. 2021-01-26. Pairing correlations in the cuprates: a numerical study of the three-band Hubbard model. https://doi.org/10.1103/physrevb.103.144514
Cite the original work for its findings. Save a collection to share your selection of sources.