Metal-insulator transitions, superconductivity, and magnetism in the two-band Hubbard model
Academic Article
Publication Date:
2018
abstract:
We explore the ground-state properties of the two-band Hubbard model with degenerate electronic bands, parametrized by nearest-neighbor hopping t, intra- and interorbital on-site Coulomb repulsions U and U?, and Hund coupling J, focusing on the case with J>0. Using Jastrow-Slater wave functions, we consider both states with and without magnetic/orbital order. Electron pairing can also be included in the wave function, in order to detect the occurrence of superconductivity for generic electron densities n. When no magnetic/orbital order is considered, the Mott transition is continuous for n=1 (quarter filling); instead, at n=2 (half filling), it is first order for small values of J/U, while it turns out to be continuous when the ratio J/U is increased. A significant triplet pairing is present in a broad region around n=2. By contrast, singlet superconductivity (with d-wave symmetry) is detected only for small values of the Hund coupling and very close to half filling. When including magnetic and orbital order, the Mott insulator acquires antiferromagnetic order for n=2; instead, for n=1 the insulator has ferromagnetic and antiferro-orbital orders. In the latter case, a metallic phase is present for small values of U/t and the metal-insulator transition becomes first order. In the region with 1
Iris type:
01.01 Articolo in rivista
Keywords:
-
List of contributors:
Becca, Federico
Published in: