English

Thermal quark production in ultra-relativistic nuclear collisions

Nuclear Theory 2009-09-25 v1 High Energy Physics - Phenomenology

Abstract

We calculate thermal production of u, d, s, c and b quarks in ultra-relativistic heavy ion collisions. The following processes are taken into account: thermal gluon decay (g to ibar i), gluon fusion (g g to ibar i), and quark-antiquark annihilation (jbar j to ibar i), where i and j represent quark species. We use the thermal quark masses, mi2(T)mi2+(2g2/9)T2m_i^2(T)\simeq m_i^2 + (2g^2/9)T^2, in all the rates. At small mass (mi(T)<2Tm_i(T)<2T), the production is largely dominated by the thermal gluon decay channel. We obtain numerical and analytic solutions of one-dimensional hydrodynamic expansion of an initially pure glue plasma. Our results show that even in a quite optimistic scenario, all quarks are far from chemical equilibrium throughout the expansion. Thermal production of light quarks (u, d and s) is nearly independent of species. Heavy quark (c and b) production is quite independent of the transition temperature and could serve as a very good probe of the initial temperature. Thermal quark production measurements could also be used to determine the gluon damping rate, or equivalently the magnetic mass.

Keywords

Cite

@article{arxiv.nucl-th/9311028,
  title  = {Thermal quark production in ultra-relativistic nuclear collisions},
  author = {Tanguy Altherr and David Seibert},
  journal= {arXiv preprint arXiv:nucl-th/9311028},
  year   = {2009}
}

Comments

14 pages (latex) plus 6 figures (uuencoded postscript files); CERN-TH.7038/93