Looking at QED with Dyson-Schwinger equations: basic equations, Ward-Takahashi identities and the two-photon-two-fermion irreducible vertex
Orlando Oliveira, Helena Lessa Macedo, Rodrigo Carmo Terin

TL;DR
This paper derives a minimal set of Dyson-Schwinger equations for QED in Minkowski space, explores the two-photon-two-fermion vertex, and discusses its implications for non-perturbative calculations and effective vertices.
Contribution
It introduces a truncated Dyson-Schwinger framework for QED that includes the two-photon-two-fermion vertex and solves the Ward-Takahashi identity in various limits.
Findings
The truncated two-photon-two-fermion equation reproduces lowest-order perturbative results.
An iterative procedure for higher order corrections is proposed.
The Ward-Takahashi identity is solved in the soft photon limit.
Abstract
A minimal truncated set of the integral Dyson-Schwinger equations, in Minkowski spacetime, that allows to explore QED beyond its perturbative solution is derived for general linear covariant gauges. The minimal set includes the equations for the fermion and photon propagators, the photon-fermion vertex, and the two-photon-two-fermion one-particle-irreducible diagram. If the first three equations are exact, to build a closed set of equations, the two-photon-two-fermion equation is truncated ignoring the contribution of Green functions with large number of external legs. It is shown that the truncated equation for the two-photon-two-fermion vertex reproduces the lowest-order perturbative result in the limit of the small coupling constant. Furthermore, this equation allows to define an iterative procedure to compute higher order corrections in the coupling constant. The Ward-Takahashi…
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Taxonomy
TopicsBlack Holes and Theoretical Physics · Quantum Chromodynamics and Particle Interactions · High-Energy Particle Collisions Research
