English

Magnetic Correlations in the Two-dimensional Repulsive Fermi Hubbard Model

Strongly Correlated Electrons 2017-09-06 v1

Abstract

The repulsive Fermi Hubbard model on the square lattice has a rich phase diagram near half-filling (corresponding to the particle density per lattice site n=1n=1): for n=1n=1 the ground state is an antiferromagnetic insulator, at 0.6<n0.80.6 < n \lesssim 0.8, it is a dx2y2d_{x^2-y^2}-wave superfluid (at least for moderately strong interactions U4tU \lesssim 4t in terms of the hopping tt), and the region 1n11-n \ll 1 is most likely subject to phase separation. Much of this physics is preempted at finite temperatures and to an extent driven by strong magnetic fluctuations, their quantitative characteristics and how they change with the doping level being much less understood. Experiments on ultra-cold atoms have recently gained access to this interesting fluctuation regime, which is now under extensive investigation. In this work we employ a self-consistent skeleton diagrammatic approach to quantify the characteristic temperature scale TM(n)T_{M}(n) for the onset of magnetic fluctuations with a large correlation length and identify their nature. Our results suggest that the strongest fluctuations---and hence highest TMT_{M} and easiest experimental access to this regime---are observed at U/t46U/t \approx 4-6.

Keywords

Cite

@article{arxiv.1706.07556,
  title  = {Magnetic Correlations in the Two-dimensional Repulsive Fermi Hubbard Model},
  author = {Fedor Šimkovic IV. and Youjin Deng and N. V. Prokof'ev and B. V. Svistunov and I. Tupitsyn and Evgeny Kozik},
  journal= {arXiv preprint arXiv:1706.07556},
  year   = {2017}
}

Comments

5 pages, 6 figures

R2 v1 2026-06-22T20:27:23.411Z