Thoughts on Non-Perturbative Thermalization and Jet Quenching in Heavy Ion Collisions
arXiv:hep-ph/0507134 · doi:10.1016/j.nuclphysa.2005.09.010
Abstract
We start by presenting physical arguments for the impossibility of perturbative thermalization leading to (non-viscous) Bjorken hydrodynamic description of heavy ion collisions. These arguments are complimentary to our more formal argument presented in [hep-ph/0503038]. We argue that the success of hydrodynamic models in describing the quark-gluon system produced in heavy ion collisions could only be due to non-perturbative strong coupling effects. We continue by studying non-perturbative effects in heavy ion collisions at high energies. We model non-perturbative phenomena by an instanton ensemble. We show that non-perturbative instanton vacuum fields may significantly contribute to jet quenching in nuclear collisions. At the same time, the instanton ensemble contribution to thermalization is likely to be rather weak, leading to non-perturbative thermalization time comparable to the time of hadronization. This example illustrates that jet quenching is not necessarily a signal of a thermalized medium. Indeed, since the instanton models do not capture all the effects of QCD vacuum (e.g. they do not account for confinement), there may be other non-perturbative effects facilitating thermalization of the system.
26 pages, no figures
References in corpus (11)
- Saturation Physics and Deuteron--Gold Collisions at RHIC
- Hard-Loop Dynamics of Non-Abelian Plasma Instabilities
- From Color Glass Condensate to Quark Gluon Plasma through the event horizon
- The Fate of Non-Abelian Plasma Instabilities in 3+1 Dimensions
- On the equivalence between the Boltzmann equation and classical field theory at large occupation numbers
- Nuclear Modification Factors for Hadrons At Forward and Backward Rapidities in Deuteron-Gold Collisions at sqrt(s_NN) = 200 GeV
- The Boltzmann Equation in Classical and Quantum Field Theory
- Can Thermalization in Heavy Ion Collisions be Described by QCD Diagrams?
- A Possible Modified "bottom-up" Thermalization in Heavy Ion Collisions
- Rapidity distribution of gluons in the classical field model for heavy ion collisions
- Out-of-Equilibrium Collinear Enhanced Equilibration in the Bottom-Up Thermalization Scenario in Heavy Ion Collisions
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- Deconfinement transition dynamics and early thermalization in QGP
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