English

Quantum phase diagram of the half filled Hubbard model with bond-charge interaction

Strongly Correlated Electrons 2010-11-30 v2

Abstract

Using quantum field theory and bosonization, we determine the quantum phase diagram of the one-dimensional Hubbard model with bond-charge interaction XX in addition to the usual Coulomb repulsion UU at half-filling, for small values of the interactions. We show that it is essential to take into account formally irrelevant terms of order XX. They generate relevant terms proportional to X2X^2 in the flow of the renormalization group (RG). These terms are calculated using operator product expansions. The model shows three phases separated by a charge transition at U=UcU=U_c and a spin transition at U=Us>UcU=U_s>U_c. For U<UcU<U_c singlet superconducting correlations dominate, while for U>UsU>U_s, the system is in the spin-density wave phase as in the usual Hubbard model. For intermediate values Uc<U<UsU_c<U<U_s, the system is in a spontaneously dimerized bond-ordered wave phase, which is absent in the ordinary Hubbard model with X=0X=0. We obtain that the charge transition remains at Uc=0U_c=0 for X0X \neq 0. Solving the RG equations for the spin sector, we provide an analytical expression for Us(X)U_s(X). The results, with only one adjustable parameter, are in excellent agreement with numerical ones for X<t/2X < t/2 where tt is the hopping.

Keywords

Cite

@article{arxiv.1009.4113,
  title  = {Quantum phase diagram of the half filled Hubbard model with bond-charge interaction},
  author = {A. O. Dobry and A. A. Aligia},
  journal= {arXiv preprint arXiv:1009.4113},
  year   = {2010}
}

Comments

29 pages, 2 figures