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  • Open Access

Probing cold nuclear matter with energy correlators

Kyle Devereaux1,*, Wenqing Fan1,†, Weiyao Ke2,‡, Kyle Lee3,§, and Ian Moult4,∥

  • *Contact author: devereauxk@berkeley.edu
  • †Contact author: wenqing@lbl.gov
  • ‡Contact author: weiyaoke@gmail.com
  • §Contact author: kylel@mit.edu
  • ∥Contact author: ian.moult@yale.edu

Phys. Rev. C 112, 035202 – Published 2 September, 2025

DOI: https://doi.org/10.1103/n3j3-v3m1

Abstract

The future electron-ion collider (EIC) will produce the first-ever high energy collisions between electrons and a wide range of nuclei, opening a new era in the study of cold nuclear matter. Quarks and gluons produced in these collisions will propagate through the dense nuclear matter of nuclei, imprinting its structure into subtle correlations in the energy flux of final state hadrons. In this article, we apply recent developments from the field of jet substructure, namely the energy correlator observables, to decode these correlations and provide a new window into nuclear structure. The energy correlators provide a calibrated probe of the scale dependence of vacuum quantum chromodynamics (QCD), enabling medium modifications to be imaged and interpreted as a function of scale. Using the eHIJING parton shower to simulate electron-nucleus collisions, we demonstrate that the size of the nucleus is imprinted as an angular scale in the correlators, with a magnitude that is visible for realistic EIC kinematics. We can observe the size difference between the proposed EIC nuclear targets He3, He4, C12, Ca40, Cu64, Au197, and U238, showing that the energy correlators can image femtometer length scales using asymptotic energy flux. Our approach offers a unified view of jet substructure across collider experiments, and provides numerous new theoretical tools to unravel the complex dynamics of QCD in extreme environments, both hot and cold.

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