English

The Quark-Gluon Vertex and the QCD Infrared Dynamics

High Energy Physics - Phenomenology 2019-02-20 v2 High Energy Physics - Lattice High Energy Physics - Theory Nuclear Theory

Abstract

The Dyson-Schwinger quark equation is solved for the quark-gluon vertex using the most recent lattice data available in the Landau gauge for the quark, gluon and ghost propagators, the full set of longitudinal tensor structures in the Ball-Chiu vertex, taking into account a recently derived normalisation for a quark-ghost kernel form factors and the gluon contribution for the tree level quark-gluon vertex identified on a recent study of the lattice soft gluon limit. A solution for the inverse problem is computed after the Tikhonov linear regularisation of the integral equation, that implies solving a modified Dyson-Schwinger equation. We get longitudinal form factors that are strongly enhanced at the infrared region, deviate significantly from the tree level results for quark and gluon momentum below 2 GeV and at higher momentum approach their perturbative values. The computed quark-gluon vertex favours kinematical configurations where the quark momentum pp and the gluon momentum qq are small and parallel. Further, the quark-gluon vertex is dominated by the form factors associated to the tree level vertex γμ\gamma_\mu and to the operator 2pμ+qμ2 \, p_\mu + q_\mu. The higher rank tensor structures provide small contributions to the vertex.

Keywords

Cite

@article{arxiv.1807.10348,
  title  = {The Quark-Gluon Vertex and the QCD Infrared Dynamics},
  author = {O. Oliveira and W. de Paula and T. Frederico and J. P. B. C de Melo},
  journal= {arXiv preprint arXiv:1807.10348},
  year   = {2019}
}

Comments

Some rewriting. Version accepted for publication in Eur Phys J C