English

Single-hole properties in the $t$-$J$ and strong-coupling models

Condensed Matter 2009-10-28 v1

Abstract

We report numerical results for the single-hole properties in the tt-JJ model and the strong-coupling approximation to the Hubbard model in two dimensions. Using the hopping basis with over 10610^6 states we discuss (for an infinite system) the bandwidth, the leading Fourier coefficients in the dispersion, the band masses, and the spin-spin correlations near the hole. We compare our results with those obtained by other methods. The band minimum is found to be at (π/2,π/2\pi/2,\pi/2) for the tt-JJ model for 0.1t/J100.1 \leq t/J \leq 10, and for the strong-coupling model for 1t/J101 \leq t/J \leq 10. The bandwidth in both models is approximately 2J2J at large t/Jt/J, in rough agreement with loop-expansion results but in disagreement with other results. The strong-coupling bandwidth for t/J\agt6t/J\agt6 can be obtained from the tt-JJ model by treating the three-site terms in first-order perturbation theory. The dispersion along the magnetic zone face is flat, giving a large parallel/perpendicular band mass ratio.

Keywords

Cite

@article{arxiv.cond-mat/9508038,
  title  = {Single-hole properties in the $t$-$J$ and strong-coupling models},
  author = {B. M. Elrick and A. E. Jacobs},
  journal= {arXiv preprint arXiv:cond-mat/9508038},
  year   = {2009}
}

Comments

1 RevTeX file with epsf directives to include 8 .eps figures 8 figure files encoded using uufiles

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