Abstract
At very high energies, in the infinite momentum frame and in light-cone gauge, a hard scale proportional to the high parton density arises in QCD. In an effective theory of QCD at small x, this scale is of order αsμ, where μ is simply related to the gluon density at higher rapidities. The ab initio real time evolution of small x modes in a nuclear collision can be described consistently in the classical effective theory and various features of interest can be studied non-perturbatively. In this paper, we discuss results from a real time SU (2) lattice computation of the production of gluon jets at very high energies. At very large transverse momenta, k1 ≥ μ our results match the predictions from pQCD based mini-jet calculations. Novel non-perturbative behavior of the small x modes is seen at smaller momenta k1 ∼ αsμ. Gauge invariant energy-energy correlators are used to estimate energy distributions evolving in proper time.
| Original language | English |
|---|---|
| Pages (from-to) | 237-270 |
| Number of pages | 34 |
| Journal | Nuclear Physics, Section B |
| Volume | 557 |
| Issue number | 1-2 |
| DOIs | |
| State | Published - Sep 20 1999 |
Keywords
- Heavy-ion collisions
- Perturbative QCD jets
- Quark-gluon plasma
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