Impact of partially bosonized collective fluctuations on electronic degrees of freedom
arXiv:2102.05425 · doi:10.1103/PhysRevB.103.245123
Abstract
In this work we present a comprehensive analysis of collective electronic fluctuations and their effect on single-particle properties of the Hubbard model. Our approach is based on a standard dual fermion/boson scheme with the interaction truncated at the two-particle level. Within this framework we compare various approximations that differ in the set of diagrams (ladder vs exact diagrammatic Monte Carlo), and/or in the form of the four-point interaction vertex (exact vs partially bosonized). This allows to evaluate the effect of all components of the four-point vertex function on the electronic self-energy. In particular, we observe that contributions that are not accounted for by the partially bosonized approximation for the vertex have only a minor effect on electronic degrees of freedom in a broad range of model parameters. In addition, we find that in the regime, where the ladder dual fermion approximation provides an accurate solution of the problem, the leading contribution to the self-energy is given by the longitudional bosonic modes. This can be explained by the fact that contributions of transverse particle-hole and particle-particle modes partially cancel each other. Our results justify the applicability of the recently introduced dual triply irreducible local expansion (D-TRILEX) method that represents one of the simplest consistent diagrammatic extensions of the dynamical mean-field theory. We find that the self-consistent D-TRILEX approach is reasonably accurate also in challenging regimes of the Hubbard model, even where the dynamical mean-field theory does not provide the optimal local reference point (impurity problem) for the diagrammatic expansion.
References in corpus (21)
- Continuous-time Monte Carlo methods for quantum impurity models
- Dynamical vertex approximation - a step beyond dynamical mean field theory
- Screening and Non-local Correlations in the Extended Hubbard Model from Self-Consistent Combined GW and Dynamical Mean Field Theory
- Dual fermion approach to the two-dimensional Hubbard model: Antiferromagnetic fluctuations and Fermi arcs
- Fluctuation diagnostics of the electron self-energy: Origin of the pseudogap physics
- Beyond extended dynamical mean-field theory: Dual boson approach to the two-dimensional extended Hubbard model
- Combined GW and dynamical mean field theory: Dynamical screening effects in transition metal oxides
- Superconductivity, antiferromagnetism and phase separation in the two-dimensional Hubbard model: A dual-fermion approach
- Spectral Properties of Correlated Materials: Local Vertex and Non-Local Two-Particle Correlations from Combined GW and Dynamical Mean Field Theory
- Ab initio dynamical vertex approximation
- Extended dynamical mean-field study of the Hubbard model with long range interactions
- On the dangers of partial diagrammatic summations: Benchmarks for the two-dimensional Hubbard model in the weak-coupling regime
- Efficient implementation of the continuous-time hybridization expansion quantum impurity solver
- Dynamical correlations and screened exchange on the experimental bench: spectral properties of the cobalt pnictide BaCo2As2
- The Fierz convergence criterion: a controlled approach to strongly-interacting systems with small embedded clusters
- Worm Improved Estimators in Continuous-time Quantum Monte Carlo
- Diagrammatic Monte Carlo for Dual Fermions
- Optical conductivity in cluster dynamical mean field theory: formalism and application to high temperature superconductors
- Self-consistent ladder DA approach
- Dual fermion method as a prototype of generic reference-system approach for correlated fermions
- Diagrammatic study of optical excitations in correlated systems
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