Superconducting instability in the Holstein-Hubbard model: A numerical renormalization group study
Abstract
We have studied the d-wave pairing-instability in the two-dimensional Holstein-Hubbard model at the level of a full fluctuation exchange approximation which treats both Coulomb and electron-phonon (EP) interaction diagrammatically on an equal footing. A generalized numerical renormalization group technique has been developed to solve the resulting self-consistent field equations. The -wave superconducting phase diagram shows an optimal T_c at electron concentration <n> ~ 0.9 for the purely electronic Hubbard system. The EP interaction suppresses the d-wave T_c which drops to zero when the phonon-mediated on-site attraction becomes comparable to the on-site Coulomb repulsion . The isotope exponent is negative in this model and small compared to the classical BCS value or compared to typical observed values in non-optimally doped cuprate superconductors.
Cite
@article{arxiv.cond-mat/9708216,
title = {Superconducting instability in the Holstein-Hubbard model: A numerical renormalization group study},
author = {C. -H. Pao and H. -B. Schüttler},
journal= {arXiv preprint arXiv:cond-mat/9708216},
year = {2009}
}
Comments
4 pages RevTeX + 3 PS figures included