Multiplicative renormalizability of gluon and ghost propagators in QCD
- 13 November 2001
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review D
- Vol. 64 (11) , 116011
- https://doi.org/10.1103/physrevd.64.116011
Abstract
We reformulate the coupled set of continuum equations for the renormalized gluon and ghost propagators in QCD, such that the multiplicative renormalizability of the solutions is manifest, independently of the specific form of full vertices and renormalization constants. In the Landau gauge, the equations are free of renormalization constants, and the renormalization point dependence enters only through the renormalized coupling and the renormalized propagator functions. The structure of the equations enables us to devise novel truncations with solutions that are multiplicatively renormalizable and agree with the leading order perturbative results. We show that, for infrared power law behaved propagators, the leading infrared behavior of the gluon equation is not solely determined by the ghost loop, as concluded in previous studies, but that the gluon loop, the three-gluon loop, the four-gluon loop, and even massless quarks also contribute to the infrared analysis. In our new Landau gauge truncation, the combination of gluon and ghost loop contributions seems to reject infrared power law solutions, but massless quark loops illustrate how additional contributions to the gluon vacuum polarization could reinstate these solutions. Moreover, a schematic study of the three-gluon and four-gluon loops shows that they too need to be considered in more detail before a definite conclusion about the existence of infrared power behaved gluon and ghost propagators can be reached.Keywords
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This publication has 18 references indexed in Scilit:
- The infrared behaviour of QCD Green's functions Confinement, dynamical symmetry breaking, and hadrons as relativistic bound statesPhysics Reports, 2001
- Dyson-Schwinger equations: Density, temperature and continuum strong QCDProgress in Particle and Nuclear Physics, 2000
- Infrared behaviour of propagators and verticesPhysics Letters B, 1998
- A Solution to Coupled Dyson–Schwinger Equations for Gluons and Ghosts in Landau GaugeAnnals of Physics, 1998
- Dyson-Schwinger equations and their application to hadronic physicsProgress in Particle and Nuclear Physics, 1994
- Studies of confinement: How the gluon propagatesPhysical Review D, 1989
- Nonperturbative confinement in quantum chromodynamics. II. Mandelstam’s gluon propagatorJournal of Mathematical Physics, 1982
- Nonperturbative confinement in quantum chromodynamics. I. Study of an approximate equation of MandelstamJournal of Mathematical Physics, 1981
- Approximation scheme for quantum chromodynamicsPhysical Review D, 1979
- Reliable Perturbative Results for Strong Interactions?Physical Review Letters, 1973