English

No-quenching baseline for energy loss signals in oxygen-oxygen collisions

High Energy Physics - Phenomenology 2025-07-02 v3 Nuclear Experiment Nuclear Theory

Abstract

In this work, we perform computations of inclusive jet, and semi-inclusive jet-hadron cross sections for minimum bias oxygen-oxygen collisions at RHIC and LHC collision energies. We compute the no-quenching baseline for the jet nuclear modification factor RAAR_\mathrm{AA} and jet-, and hadron-triggered semi-inclusive nuclear modification factors IAAI_\mathrm{AA}. We do this with state-of-the-art nuclear parton distribution functions (nPDFs), next-to-leading-order matrix elements, parton shower, and hadronization. We observe deviations from unity due to cold-nuclear matter effects, even without quenching. We demonstrate that the parton distribution uncertainties constitute a significant obstacle in detecting energy loss in small collision systems. Hadron-triggered observables are particularly sensitive to uncertainties due to correlations between the trigger and analyzed particles. For jet-triggered IAAI_\mathrm{AA}, there exists a kinematic window in which nPDF and scale uncertainties cancel dramatically while showing little sensitivity to parton shower and hadronization models, addressing a major limiting factor for energy loss discovery in small systems.

Keywords

Cite

@article{arxiv.2410.22405,
  title  = {No-quenching baseline for energy loss signals in oxygen-oxygen collisions},
  author = {Jannis Gebhard and Aleksas Mazeliauskas and Adam Takacs},
  journal= {arXiv preprint arXiv:2410.22405},
  year   = {2025}
}

Comments

26 pages, 17 figures; v3: published version