Magnetism and Superconductivity in a Two-band Hubbard Model in Infinite Dimensions
Abstract
We study a two-band Hubbard model using the dynamical mean-field theory combined with the exact diagonalization method. At the electron density , a transition from a band-insulator to a correlated semimetal occurs when the on-site Coulomb interaction is varied for a fixed value of the charge-transfer energy . At low temperature, the correlated semimetal shows ferromagnetism or superconductivity. With increasing doping , the ferromagnetic transition temperature rapidly decreases and finally becomes zero at a critical value of . The second-order phase transition occurs at high temperature, while a phase separation of ferromagnetic and paramagnetic states takes place at low temperature. The superconducting transition temperature gradually decreases and finally becomes zero near () where the system is Mott insulator which shows antiferromagnetism at low temperature.
Keywords
Cite
@article{arxiv.cond-mat/0304624,
title = {Magnetism and Superconductivity in a Two-band Hubbard Model in Infinite Dimensions},
author = {Y. Ono and K. Sano},
journal= {arXiv preprint arXiv:cond-mat/0304624},
year = {2007}
}
Comments
3 pages, 5 figures, proceedings of the International Conference on Strongly Correlated Electrons with Orbital Degrees of Freedom (ORBITAL2001)