English

Weak-coupling functional renormalization-group analysis of the Hubbard model on the anisotropic triangular lattice

Superconductivity 2007-05-23 v3 Strongly Correlated Electrons

Abstract

Motivated by experiments on the layered compounds κ\kappa-(BEDT-TTF)2_2X, Cs2_2CuCl4_4, and very recently Nax_xCoO2y_2 \cdot yH2_2O, we present a weak-coupling functional renormalization-group analysis of the Hubbard model on the anisotropic triangular lattice. As the model interpolates between the nearest-neighbor square lattice and decoupled chains via the isotropic triangular lattice, it permits the study of competition between antiferromagnetic and BCS Cooper instabilities. We begin by reproducing known results for decoupled chains, and for the square lattice with only nearest-neighbor hopping amplitude t1t_1. We examine both repulsive and attractive Hubbard interactions. The role of formally irrelevant contributions to the one-loop renormalization-group flows is also studied, and these subleading contributions are shown to be important in some instances. We then observe that crossover to a BCS-dominated regime can occur even at half-filling when antiferromagnetism is frustrated through the introduction of a next-nearest-neighbor hopping amplitude t2t_2 along one of the two diagonal directions. Stripes are not expected to occur and time-reversal breaking dx2y2±idxyd_{x^2 - y^2} \pm i d_{xy} superconducting order does not arise spontaneously; instead pure dx2y2d_{x^2 - y^2} order is favored. At the isotropic triangular point (t1=t2t_1 = t_2) we find the possibility of re-entrant antiferromagnetic long-range order.

Keywords

Cite

@article{arxiv.cond-mat/0010300,
  title  = {Weak-coupling functional renormalization-group analysis of the Hubbard model on the anisotropic triangular lattice},
  author = {Shan-Wen Tsai and J. B. Marston},
  journal= {arXiv preprint arXiv:cond-mat/0010300},
  year   = {2007}
}

Comments

16 pages, 19 figures; substantially revised version with improved presentation and new results

R2 v1 2026-07-22T10:09:43.739Z