Nonperturbative Light-Front QCD
K. G. Wilson, T. Walhout, A. Harindranath, W. M. Zhang, R. J. Perry, and S. Glazek

TL;DR
This paper proposes a novel approach to low-energy QCD bound states by reformulating the problem as a weak-coupling problem using a constituent mass framework and light-front Hamiltonian techniques, aiming to unify simplicity and complexity.
Contribution
It introduces a weak-coupling formulation of QCD with constituent quark masses and a renormalization scheme, bridging the gap between the Constituent Quark Model and full QCD.
Findings
Development of a light-front Hamiltonian with constituent masses
Implementation of a similarity renormalization scheme
Initial calculations of hadronic masses and radiative corrections
Abstract
In this work the determination of low-energy bound states in Quantum Chromodynamics is recast so that it is linked to a weak-coupling problem. This allows one to approach the solution with the same techniques which solve Quantum Electrodynamics: namely, a combination of weak-coupling diagrams and many-body quantum mechanics. The key to eliminating necessarily nonperturbative effects is the use of a bare Hamiltonian in which quarks and gluons have nonzero constituent masses rather than the zero masses of the current picture. The use of constituent masses cuts off the growth of the running coupling constant and makes it possible that the running coupling never leaves the perturbative domain. For stabilization purposes an artificial potential is added to the Hamiltonian, but with a coefficient that vanishes at the physical value of the coupling constant. The weak-coupling approach…
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