Moli\`ere Scattering in Quark-Gluon Plasma: Finding Point-Like Scatterers in a Liquid
Francesco D'Eramo, Krishna Rajagopal, Yi Yin

TL;DR
This paper presents a leading order perturbative QCD calculation of Molière scattering probabilities for finite-energy partons in quark-gluon plasma, aiming to identify point-like scatterers within the strongly coupled liquid.
Contribution
It provides the first finite-energy, large-angle scattering probability calculation in QGP, extending previous infinite-energy results and aiding future jet modification analyses.
Findings
Calculated scattering probabilities for finite-energy partons at large angles.
Included all relevant scattering channels, including medium recoil.
Results will inform future jet Monte Carlo simulations and experimental analyses.
Abstract
By finding rare (but not exponentially rare) large-angle deflections of partons within a jet produced in a heavy ion collision, or of such a jet itself, experimentalists can find the weakly coupled short-distance quark and gluon particles (scatterers) within the strongly coupled liquid quark-gluon plasma (QGP) produced in heavy ion collisions. This is the closest one can come to probing QGP via a scattering experiment and ultimately learning how a strongly coupled liquid emerges from an asymptotically free gauge theory. The short-distance, particulate, structure of liquid QGP can be revealed in events in which a jet parton resolves, and scatters off, a parton from the droplet of QGP. The probability for picking up significant transverse momentum via a single scattering was calculated previously, but only in the limit of infinite parton energy which means zero angle scattering. Here, we…
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