Cluster Dual Fermion Approach to Nonlocal Correlations
arXiv:0707.4022 · doi:10.1134/S0021364007220134
Abstract
We formulate a general cluster Dual Fermion Approach to nonlocal correlations in crystals. The scheme allows the treatment of long-range correlations beyond cluster DMFT and nonlocal effects in realistic calculations of multiorbital systems. We show that the the simplest approximation exactly corresponds to free cluster DMFT. We further consider the relation between the two-particle Green functions in real and dual variables. We apply this approach by calculating the Green function of the Hubbard model in one dimension starting from the two-site cluster DMFT solution. The result agrees well with the Green function obtained from a DMRG calculation.
References in corpus (3)
Cited by in corpus (29)
- Diagrammatic routes to nonlocal correlations beyond dynamical mean field theory
- Orthogonal Polynomial Representation of Imaginary-Time Green's Functions
- Efficient perturbation theory for quantum lattice models
- Sum-rules and bath-parametrization for quantum cluster theories
- Sparse sampling approach to efficient ab initio calculations at finite temperature
- High-frequency asymptotics of the vertex function: diagrammatic parametrization and algorithmic implementation
- Dual Fermion Approach to Susceptibility of Correlated Lattice Fermions
- The Fierz convergence criterion: a controlled approach to strongly-interacting systems with small embedded clusters
- Diagrammatic Monte Carlo for Dual Fermions
- Superperturbation solver for quantum impurity models
- Correlated starting points for the functional renormalization group
- Non-equilibrium cluster-perturbation theory
- Dual Fermion Dynamical Cluster Approach for Strongly Correlated Systems
- Local Plaquette Physics as Key Ingredient of High-Temperature Superconductivity in Cuprates
- The (extended) dynamical mean field theory combined with the two-particle irreducible functional renormalization-group approach as a tool to study strongly-correlated systems
- Multiband Dual Fermion Approach to Quantum Criticality in the Hubbard Honeycomb Lattice
- Second-order dual fermion approach to the Mott transition in the two-dimensional Hubbard model
- Momentum structure of the self-energy and its parametrization for the two-dimensional Hubbard model
- The effect of six-point one-particle reducible local interactions in the dual fermion approach
- Electron energy spectrum of the spin-liquid state in a frustrated Hubbard model
- Improved treatment of fermion-boson vertices and Bethe-Salpeter equations in non-local extensions of dynamical mean field theory
- Momentum-Space Cluster Dual Fermion Method
- Second-order dual fermion for multi-orbital systems
- Perturbative solution of fermionic sign problem in lattice Quantum Monte Carlo
- Real-space renormalized dynamical mean field theory
- The finite-difference parquet method: Enhanced electron-paramagnon scattering opens a pseudogap
- Functional renormalization-group approaches, one-particle (ir)reducible with respect to local Green functions, using the dynamical mean-field theory as a starting point
- Dual-space cluster-diagrammatic approach to nonlocal electronic correlations
- Non-equilibrium variational cluster perturbation theory: quench dynamics of the quantum Ising model