Single-boson exchange formulation of the Schwinger-Dyson equation and its application to the functional renormalization group
arXiv:2411.11661 · doi:10.21468/SciPostPhys.18.3.078
Abstract
We extend the recently introduced single-boson exchange formulation to the computation of the self-energy from the Schwinger--Dyson equation (SDE). In particular, we derive its expression both in diagrammatic and in physical channels. The simple form of the single-boson exchange SDE, involving only the bosonic propagator and the fermion-boson vertex, but not the rest function, allows for an efficient numerical implementation. We furthermore discuss its implications in a truncated unity solver, where a restricted number of form factors introduces an information loss in the projection of the momentum dependence that in general affects the equivalence between the different channel representations. In the application to the functional renormalization group, we find that the convergence in the number of form factors depends on the channel representation of the SDE. For the two-dimensional Hubbard model at weak coupling, the pseudogap opening driven by antiferromagnetic fluctuations is captured already by a single (-wave) form factor in the magnetic channel representation, differently to the density and superconducting channels.
33 pages, 5 figures, submission to SciPost
References in corpus (18)
- Fluctuation diagnostics of the electron self-energy: Origin of the pseudogap physics
- Boson-Exchange Parquet Solver for dual fermions
- Mechanism of Superconductivity in the Hubbard Model at Intermediate Interaction Strength
- Fluctuation diagnostic of the nodal/antinodal dichotomy in the Hubbard model at weak coupling: a parquet dual fermion approach
- Tiling with triangles: parquet and methods unified
- Explaining the pseudogap through damping and antidamping on the Fermi surface by imaginary spin scattering
- Single boson exchange representation of the functional renormalization group for strongly interacting many-electron systems
- Dynamical functional renormalization group computation of order parameters and critical temperatures in the two-dimensional Hubbard model
- How to read between the lines of electronic spectra: the diagnostics of fluctuations in strongly correlated electron systems
- Parametrizations of local vertex corrections from weak to strong coupling: importance of the Hedin three-leg vertex
- Highly nonperturbative nature of the Mott metal-insulator transition: Two-particle vertex divergences in the coexistence region
- Multiloop flow equations for single-boson exchange fRG
- Non-perturbative intertwining between spin and charge correlations: A "smoking gun" single-boson-exchange result
- Functional Renormalization Group Approach for Inhomogeneous One-Dimensional Fermi Systems with Finite-Ranged Interactions
- Single-boson exchange functional renormalization group application to the two-dimensional Hubbard model at weak coupling
- The effect of local magnetic moments on spectral properties and resistivity near the interaction- and doping induced Mott transitions
- Unambiguous fluctuation decomposition of the self-energy: pseudogap physics beyond spin fluctuations
- Screening and effective RPA-like charge susceptibility in the extended Hubbard model