Exploring non-equilibrium quark-gluon plasma effects on charm transport coefficients
Taesoo Song, Pierre Moreau, Joerg Aichelin, Elena Bratkovskaya

TL;DR
This study investigates how non-equilibrium conditions in the quark-gluon plasma affect charm quark transport coefficients, revealing significant modifications that are crucial for interpreting heavy ion collision data.
Contribution
It introduces a detailed analysis of charm quark transport coefficients under various non-equilibrium QGP conditions using the dynamical quasi-particle model.
Findings
Anisotropic pressure increases the drag coefficient $A$ and decreases $ abla q$ at low momenta.
Reduced kinetic energy or pole mass of partons leads to more energy loss for charm quarks.
Non-equilibrium effects modify transport coefficients by 20-50%, impacting heavy ion collision analyses.
Abstract
In this article we investigate how the drag coefficient and , the transverse momentum transfer by unit length, of charm quarks are modified if the QGP is not in complete thermal equilibrium using the dynamical quasi-particle model (DQPM) which reproduces both, the equation-of-state of the QGP and the spatial diffusion coefficient of heavy quarks as predicted by lattice QCD calculations. We study three cases: a) the QGP has an anisotropic momentum distribution of the partons which leads to an anisotropic pressure b) the QGP partons have higher or lower kinetic energies as compared to the thermal expectation value, and c) the QGP partons have larger or smaller pole masses of their spectral function as compared to the pole mass from the DQPM at the QGP temperature. In the last two cases we adjust the number density of partons to obtain the same energy density as in an…
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