Imaging the Wakes of Jets with Energy-Energy-Energy Correlators
Hannah Bossi, Arjun Srinivasan Kudinoor, Ian Moult, Daniel Pablos,, Ananya Rai, Krishna Rajagopal

TL;DR
This paper introduces the first study of three-point energy-energy-energy correlators in heavy-ion collisions, demonstrating their potential to image and analyze the wake response of quark-gluon plasma to jets.
Contribution
It pioneers the use of shape-dependent three-point correlators to map the dynamical response of QGP to jets, advancing jet substructure analysis in heavy-ion physics.
Findings
Hadron wakes dominate the three-point correlator in well-separated angular regions.
Equilateral triangle configurations in the correlator reveal jet wakes distinct from vacuum emissions.
Results suggest correlators can be used to image QGP response to jets.
Abstract
As the partons in a jet propagate through the quark-gluon plasma (QGP) produced in a heavy-ion collision, they lose energy to, kick, and are kicked by the medium. The resulting modifications to the parton shower encode information about the microscopic nature of QGP. The momentum and energy lost by the parton shower are gained by the medium and, since QGP is a strongly coupled liquid, this means that the jet excites a wake in the droplet of QGP. After freezeout, this wake becomes soft hadrons with net momentum in the jet direction meaning that reconstructed jets include hadrons originating from both the modified parton shower and its wake. This makes it challenging to find an unambiguous experimental view of the response of a droplet of QGP to a jet. Recent years have seen significant advances in the understanding of the substructure of jets using correlation functions of the energy…
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Taxonomy
TopicsFluid Dynamics and Turbulent Flows · Aerodynamics and Acoustics in Jet Flows · Plasma and Flow Control in Aerodynamics
