Itinerant and local-moment magnetism in strongly correlated electron systems
arXiv:1109.4509 · doi:10.1103/PhysRevB.85.024404
Abstract
Detailed analysis of the magnetic properties of the Hubbard model within dynamical mean-field theory (DMFT) is presented. Using a RPA-like decoupling of two-particle propagators we derive a universal form for susceptibilities, which captures essential aspects of localized and itinerant pictures. This expression is shown to be quantitatively valid whenever long-range coherence of particle-hole excitations can be neglected, as is the case in large parts of the phase diagram where antiferromag- netism is dominant. The applicability of an interpretation in terms of the two archetypical pictures of magnetism is investigated for the Hubbard model on a body-centered cubic lattice with additional next-nearest neighbor hopping t'. For large values of the Coulomb interaction, local-moment mag- netism is found to be dominant, while for weakly interacting band electrons itinerant quasiparticle magnetism prevails. In the intermediate regime and for finite t' an re-entrant behavior is discovered, where antiferromagnetism only exists in a finite temperature interval.
added one figure, slight modification to the text
References in corpus (21)
- Continuous-time Monte Carlo methods for quantum impurity models
- The numerical renormalization group method for quantum impurity systems
- Intense paramagnon excitations in a large family of high-temperature superconductors
- Dynamical vertex approximation - a step beyond dynamical mean field theory
- A Numerical Renormalization Group approach to Green's Functions for Quantum Impurity Models
- Thermodynamics of the 3D Hubbard model on approach to the Neel transition
- Finite temperature Mott transition in Hubbard model on anisotropic triangular lattice
- The Hubbard model within the equations of motion approach
- Doped Mott insulator as the origin of heavy Fermion behavior in LiV2O4
- Electron Correlation Driven Heavy-Fermion Formation in LiV2O4
- Dynamical mean field study of the Mott transition in the half-filled Hubbard model on a triangular lattice
- Spectral properties of the three-dimensional Hubbard model
- Thermodynamics of the three-dimensional Hubbard model: Implications for cooling cold atomic gases in optical lattices
- Spectral Densities from Dynamic Density-Matrix Renormalization
- Non-Fermi liquid signatures in the Hubbard Model due to van Hove singularities
- Conserving approximations in direct perturbation theory: new semianalytical impurity solvers and their application to general lattice problems
- Half-filled Hubbard Model on a Bethe lattice with next-nearest neighbor hopping
- Generic susceptibilities of the half-filled Hubbard model in infinite dimensions
- Kinks in the electronic dispersion of the Hubbard model away from half filling
- Fluctuating charge density waves in the Hubbard model
- Magnetic susceptibility of the two-dimensional Hubbard model using a power series for the hopping constant
Cited by in corpus (9)
- Observation of spin-dependent dual ferromagnetism in perovskite ruthenates
- Spectral Evidence for Local-Moment Ferromagnetism in van der Waals Metals FeGaTe and FeGeTe
- Spectral properties of the two-impurity Anderson model with varying distance and various interactions
- Spin and charge dynamics of a quasi-one-dimensional antiferromagnetic metal
- Distinct itinerant spin-density waves and local-moment antiferromagnetism in an intermetallic ErPdSi single crystal
- Reliability of the one-crossing approximation in describing the Mott transition
- Extension of dynamical mean-field theory by inclusion of nonlocal two-site correlations with variable distance
- Interplay between local moment and itinerant magnetism in the layered metallic antiferromagnet TaFeTe
- Ferromagnetism and non-local correlations in the Hubbard model