English

Insulator-Metal Transition in the One and Two-Dimensional Hubbard Models

Condensed Matter 2009-10-28 v1

Abstract

We use Quantum Monte Carlo methods to determine T=0T=0 Green functions, G(r,ω)G(\vec{r}, \omega), on lattices up to 16×1616 \times 16 for the 2D Hubbard model at U/t=4U/t =4. For chemical potentials, μ\mu, within the Hubbard gap, μ<μc |\mu | < \mu_c, and at {\it long} distances, r\vec{r}, G(r,ω=μ)er/ξlG(\vec{r}, \omega = \mu) \sim e^{ -|\vec{r}|/\xi_l} with critical behavior: ξlμμcν\xi_l \sim | \mu - \mu_c |^{-\nu}, ν=0.26±0.05 \nu = 0.26 \pm 0.05. This result stands in agreement with the assumption of hyperscaling with correlation exponent ν=1/4\nu = 1/4 and dynamical exponent z=4z = 4. In contrast, the generic band insulator as well as the metal-insulator transition in the 1D Hubbard model are characterized by ν=1/2\nu = 1/2 and z=2z = 2.

Cite

@article{arxiv.cond-mat/9510084,
  title  = {Insulator-Metal Transition in the One and Two-Dimensional Hubbard Models},
  author = {F. F. Assaad and M. Imada},
  journal= {arXiv preprint arXiv:cond-mat/9510084},
  year   = {2009}
}

Comments

9 pages (latex) and 5 postscript figures. Submitted for publication in Phys. Rev. Lett