Jet Momentum Broadening in Viscous QCD Matter: A Moment Expansion Approach
par
Amphi Besse
Subatech
Jets probe the quark–gluon plasma at its earliest, most far-from-equilibrium stages, when the medium is strongly flowing and highly anisotropic. Medium-induced broadening is typically encoded in a single scalar transport coefficient, the jet quenching parameter $\hat{q}$, defined in the medium's local rest frame. This scalar description is tied to a specific rest frame and a single "transverse" plane, missing the rich directional structure and flow-induced anisotropies that appear in broadening in realistic, expanding QCD matter. We formulate out-of-equilibrium jet momentum broadening in QCD effective kinetic theory through a moment expansion of the medium distribution function, a method traditionally used to derive relativistic viscous hydrodynamics from kinetic theory. We explicitly compute the leading near-equilibrium contribution to the spatial jet broadening tensor $q^{ij}$ within the 14-moment approximation, and show that it is controlled by the medium shear-stress tensor. This provides a direct map from QCD effective kinetic theory to event-by-event viscous hydrodynamic simulations, converting local shear-stress fields into anisotropic corrections to jet broadening in heavy-ion collisions.