Hypothesis of quark binding by condensation of gluons in hadrons
arXiv:1110.1430 · doi:10.1007/s00601-011-0282-1
Abstract
Hypothesis of quark binding through condensation of gluons inside hadrons is formulated in the context of a renormalization group procedure for effective particles (RGPEP) in the light-front (LF) Hamiltonian approach to QCD. At the momentum scales of relative motion of hadronic constituents that are comparable with Lambda_QCD, the hypothetical boost-invariant constituent dynamics is identified using gauge symmetry. The resulting picture of mesons and baryons closely resembles constituent quark models with harmonic oscillator potentials, shares some features of AdS/QCD, and can be systematically studied using RGPEP in QCD.
7 pages, Few Body Systems style, 1 png figure, presented at LIGHTCONE 2011, 23 - 27 May, 2011, Dallas, TX
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Cited by in corpus (5)
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- Manifestation of proton structure in the initial-state anisotropies in high-energy proton-proton collisions
- Proton structure in high-energy high-multiplicity p-p collisions
- Excited lepton baryogenesis
- Asymptotic freedom in the Hamiltonian approach to binding of color