A lattice study of the jet quenching parameter
Marco Panero, Kari Rummukainen, Andreas Sch\"afer

TL;DR
This paper presents a first-principles lattice computation of the jet quenching parameter in high-temperature QCD, revealing significant soft contributions and providing estimates relevant for heavy-ion collision experiments.
Contribution
It introduces a non-perturbative lattice method to evaluate the jet quenching parameter using gauge-invariant operators in electrostatic QCD, extending previous theoretical approaches.
Findings
Soft contributions to the jet quenching parameter are large
Quantitative estimates align with phenomenological models
Results are consistent with strong-coupling holographic computations
Abstract
We present a first-principle computation of the jet quenching parameter, which describes the momentum broadening of a high-energy parton moving through the deconfined state of QCD matter at high temperature. Following an idea originally proposed by Caron-Huot, we explain how one can evaluate the soft contribution to the collision kernel characterizing this real-time phenomenon, analyzing certain gauge-invariant operators in a dimensionally reduced effective theory (electrostatic QCD), which can be studied non-perturbatively via simulations on a Euclidean lattice. Our high-precision numerical computations at two different temperatures indicate that soft contributions to the jet quenching parameter are large. After discussing the systematic uncertainties involved, we present a quantitative estimate for the jet quenching parameter in the temperature range accessible at heavy-ion colliders,…
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