Metal-insulator transition in (2+1)-dimensional Hubbard model with tensor renormalization group
arXiv:2109.14149 · doi:10.1093/ptep/ptac014
Abstract
We investigate the doping-driven metal-insulator transition of the (2+1)-dimensional Hubbard model in the path-integral formalism with the tensor renormalization group method. We calculate the electron density as a function of the chemical potential choosing three values of the Coulomb potential with , , and as representative cases of the strong, intermediate, and weak couplings. We have determined the critical chemical potential at each , where the Hubbard model undergoes the metal-insulator transition from the half-filling plateau with to the metallic state with . Our results indicate that the model exhibits the metal-insulator transition over the vast region of the finite coupling .
6 pages, 7 figures
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