Momentum broadening in unstable quark-gluon plasma
arXiv:1607.02359 · doi:10.1103/PhysRevC.95.024906
Abstract
Quark-gluon plasma produced at the early stage of ultrarelativistic heavy ion collisions is unstable, if weakly coupled, due to the anisotropy of its momentum distribution. Chromomagnetic fields are spontaneously generated and can reach magnitudes much exceeding typical values of the fields in equilibrated plasma. We consider a high energy test parton traversing an unstable plasma that is populated with strong fields. We study the momentum broadening parameter which determines the radiative energy loss of the test parton. We develop a formalism which gives as the solution of an initial value problem, and we focus on extremely oblate plasmas which are physically relevant for relativistic heavy ion collisions. The parameter is found to be strongly dependent on time. For short times it is of the order of the equilibrium value, but at later times grows exponentially due to the interaction of the test parton with unstable modes and becomes much bigger than the value in equilibrium. The momentum broadening is also strongly directionally dependent and is largest when the test parton velocity is transverse to the beam axis. Consequences of our findings for the phenomenology of jet quenching in relativistic heavy ion collisions are briefly discussed.
43 pages, 5 figures, published version
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- Collective modes in anisotropic plasmas
- Probes of the quark-gluon plasma and plasma instabilities
- Energy loss of heavy quarks in the presence of magnetic field
- Study of the heavy quarks energy loss through medium polarization, elastic collision and radiative processes
- On transverse momentum broadening in real-time lattice simulations of the glasma and in the weak-field limit