4.6 Article

Commensurate and spiral magnetic order in the doped two-dimensional Hubbard model: Dynamical mean-field theory analysis

Journal

PHYSICAL REVIEW B
Volume 107, Issue 24, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevB.107.245104

Keywords

-

Ask authors/readers for more resources

We propose a dynamical mean-field theory approach for the study of spiral magnetic order, which includes impurity solvers for the diagonal local Green's function. By considering nonuniform dynamic magnetic susceptibilities in a local coordinate frame, we describe the evolution of magnetic order in the t-t' Hubbard model. We find that with doping, the antiferromagnetic order changes to an incommensurate one and then to the paramagnetic phase.
We develop a dynamical mean-field theory approach for the spiral magnetic order, changing to a local coordinate frame with preferable spin alignment along the z axis, which can be considered with the impurity solvers treating the spin diagonal local Green's function. We furthermore solve the Bethe-Salpeter equations for nonuniform dynamic magnetic susceptibilities in the local coordinate frame. We apply this approach to describe the evolution of magnetic order with doping in the t -t' Hubbard model with t' = 0.15, which is appropri-ate for the description of the doped La2CuO4 high-temperature superconductor. We find that with doping the antiferromagnetic order changes to the (Q, pi) incommensurate one and then to the paramagnetic phase. The spectral weight at the Fermi level is suppressed near half filling and continuously increases with doping. The dispersion of holes in the antiferromagnetic phase shows qualitative agreement with the results of the t -J model consideration. In the incommensurate phase we find two branches of hole dispersions, one of which crosses the Fermi level. The resulting Fermi surface forms hole pockets. We also consider the dispersion of the magnetic excitations, obtained from the nonlocal dynamic magnetic susceptibilities. The transverse spin excitations are gapless, fulfilling the Goldstone theorem; in contrast to the mean-field approach the obtained magnetic state is found to be stable. The longitudinal excitations are characterized by a small gap, showing the rigidity of the spin excitations. For realistic hopping and interaction parameters we reproduce the experimentally measured spin-wave dispersion of La2CuO4.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.6
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available