English

From Lead to Helium: Discovery Potential for Jet Quenching in the Smallest Collision Systems

High Energy Physics - Phenomenology 2025-12-22 v1 Nuclear Theory

Abstract

We present perturbative quantum chromodynamics (pQCD) predictions for the modification to the yield of high-momentum particles in very light ion collisions - 10B+10B{}^{10}\mathrm{B} + {}^{10}\mathrm{B}, 6Li+6Li{}^{6}\mathrm{Li} + {}^{6}\mathrm{Li}, 4He+4He{}^{4}\mathrm{He} + {}^{4}\mathrm{He}, and 3He+3He{}^{3}\mathrm{He} + {}^{3}\mathrm{He} - both with and without medium-induced energy loss. We show that there is non-trivial suppression expected from our partonic energy loss model in symmetric systems from 208Pb+208Pb{}^{208}\mathrm{Pb} + {}^{208}\mathrm{Pb} to 3He+3He{}^{3}\mathrm{He} + {}^{3}\mathrm{He} and in asymmetric systems A+BA + B, and that the energy loss scales approximately with (AB)1/3(\sqrt{A B})^{1 / 3}. Further, we find that deep inelastic scattering measurements in 3He{}^{3}\mathrm{He} and 6Li{}^{6}\mathrm{Li} tightly constrain the nPDF baseline, making these isotopes a particularly clean environment for observing final-state partonic energy loss induced by the formation of a quark-gluon plasma in these very small systems.

Keywords

Cite

@article{arxiv.2512.17832,
  title  = {From Lead to Helium: Discovery Potential for Jet Quenching in the Smallest Collision Systems},
  author = {Coleridge Faraday and Ben Bert and Jack Brand and Werner Vogelsang and W. A. Horowitz},
  journal= {arXiv preprint arXiv:2512.17832},
  year   = {2025}
}

Comments

7 pages, 2 figures