English

Metal-Insulator-Transition in a Weakly interacting Disordered Electron System

Disordered Systems and Neural Networks 2015-12-02 v2

Abstract

The interplay of interactions and disorder is studied using the Anderson-Hubbard model within the typical medium dynamical cluster approximation. Treating the interacting, non-local cluster self-energy (Σc[G~](i,ji)\Sigma_c[{\cal \tilde{G}}](i,j\neq i)) up to second order in the perturbation expansion of interactions, U2U^2, with a systematic incorporation of non-local spatial correlations and diagonal disorder, we explore the initial effects of electron interactions (UU) in three dimensions. We find that the critical disorder strength (WcUW_c^U), required to localize all states, increases with increasing UU; implying that the metallic phase is stabilized by interactions. Using our results, we predict a soft pseudogap at the intermediate WW close to WcUW_c^U and demonstrate that the mobility edge (ωϵ\omega_\epsilon) is preserved as long as the chemical potential, μ\mu, is at or beyond the mobility edge energy.

Keywords

Cite

@article{arxiv.1503.00025,
  title  = {Metal-Insulator-Transition in a Weakly interacting Disordered Electron System},
  author = {C. E. Ekuma and S. -X. Yang and H. Terletska and K. -M. Tam and N. S. Vidhyadhiraja and J. Moreno and M. Jarrell},
  journal= {arXiv preprint arXiv:1503.00025},
  year   = {2015}
}

Comments

10 Pages, 8 Figures with Supplementary materials included

R2 v1 2026-06-22T08:40:13.894Z