Transport of hard probes through glasma
Margaret E. Carrington, Alina Czajka, Stanislaw Mrowczynski

TL;DR
This paper calculates the momentum broadening and energy loss of high-energy probes in the early glasma phase of heavy-ion collisions, revealing significant effects that influence jet quenching.
Contribution
It provides a detailed computation of transport coefficients in an evolving glasma using a Fokker-Planck approach, including higher-order correlators and temporal evolution.
Findings
Transport coefficients are strongly time-dependent.
Maximum $t q$ of a few GeV^2/fm and $dE/dx$ around 1 GeV/fm.
Glasma significantly contributes to jet quenching effects.
Abstract
We calculate the transverse momentum broadening and collisional energy loss of hard probes traversing an evolving glasma during the earliest phase of a relativistic heavy-ion collision. We use a Fokker-Planck equation and apply a proper time expansion to describe the temporal evolution of the glasma. The correlators of the chromodynamic fields that determine the Fokker-Planck collision terms, which in turn provide and , are computed to fifth order. Both transport coefficients are strongly dependent on time. The maximum values they acquire before the proper time expansion breaks down are large: is of the order of a few and . Their precise values depend on the probe's velocity , the saturation momentum , and an IR regulator that is related to the confinement scale. We study the…
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