Spatial fluctuations of spin and orbital in two-orbital Hubbard model
arXiv:0812.4019 · doi:10.1103/PhysRevB.79.245128
Abstract
We investigate the quasiparticle dynamics in the two-orbital Hubbard model on the square lattice at quarter filling by means of the cellular dynamical mean field theory. We show that the Fermi-liquid state is stabilized up to the large Hubbard interactions in the symmetric case without the Hund's coupling, and find the heavy quasiparticles around the metal-insulator boundary. It is elucidated that the Hund's coupling enhances the antiferro-orbital correlations, which give rise to the pseudo gap behavior in the single-particle excitations. We also find the nonmonotonic temperature dependence in the quasiparticle dynamics for intermediate strength of the Hund's coupling, and clarify that it is caused by the competition between the Fermi-liquid formation and the antiferro-orbital fluctuations.
6 pages, 7 figures, revised version accepted for publication in Phys. Rev. B
References in corpus (23)
- The numerical renormalization group method for quantum impurity systems
- Quantum Cluster Theories
- A continuous-time solver for quantum impurity models
- Orbital-selective Mott transitions in the degenerate Hubbard model
- Mott Transition, Antiferromagnetism, and d-wave Superconductivity in Two-Dimensional Organic Conductors
- Evolution of electronic structure of doped Mott insulators - reconstruction of poles and zeros of Green's function
- Strongly Correlated Superconductivity: a plaquette Dynamical mean field theory study
- Dynamical Breakup of the Fermi Surface in a doped Mott Insulator
- Cluster Dynamical Mean Field analysis of the Mott transition
- Dynamical Mean Field Theory with the Density Matrix Renormalization Group
- Finite temperature Mott transition in Hubbard model on anisotropic triangular lattice
- Mott transition in Kagomé lattice Hubbard model
- Pseudogap and Mott Transition Studied by Cellular Dynamical Mean Field Theory
- Doped Mott insulator as the origin of heavy Fermion behavior in LiV2O4
- Dynamical Density-Matrix Renormalization Group for the Mott--Hubbard insulator in high dimensions
- Electron spectra close to a metal-to-insulator transition
- Finite-temperature Mott transitions in multi-orbital Hubbard model
- Quantum Monte Carlo study for multiorbital systems with preserved spin and orbital rotational symmetries
- Mott transitions in two-orbital Hubbard systems
- Understanding the Heavy Fermion Phenomenology from Microscopic Model
- Itinerant ferromagnetism in the multiorbital Hubbard model: a dynamical mean-field study
- Metal-insulator transition in the two-orbital Hubbard model at fractional band fillings: Self-energy functional approach
- Variational Monte Carlo study of ferromagnetism in the two-orbital Hubbard model on a square lattice
Cited by in corpus (9)
- The nature of correlations in the insulating states of twisted bilayer graphene
- Nonlocal correlations induced by Hund's coupling: a cluster DMFT study
- Multi-orbital cluster dynamical mean-field theory with an improved continuous-time quantum Monte Carlo algorithm
- Orbital Order, Metal Insulator Transition, and Magnetoresistance-Effect in the two-orbital Hubbard model
- Long-range orders, spin- and orbital-freezing in the two-band Hubbard model
- Double-expansion impurity solver for multiorbital models with dynamically screened U and J
- Bath parameterization in multi-band cluster Dynamical Mean-Field Theory
- PhD Thesis: Electronic correlations in multiorbital systems
- Unrestricted Hartree-Fock Analysis of SrCaRuO