Data-driven method to estimate contamination from light ion beam transmutation at colliders
arXiv:2509.09736 · doi:10.1103/f4c5-yys5
Abstract
Collisions of relativistic light ions, such as oxygen, neon, and magnesium, have been proposed as a way to examine the system-size dependence of dynamics typically associated with the quark-gluon plasma produced in collisions of heavier ions such as xenon, gold, or lead. Recent efforts at both the Relativistic Heavy Ion Collider (RHIC) and Large Hadron Collider (LHC) have produced large datasets of proton-oxygen, oxygen-oxygen, and neon-neon collisions, catalyzing intense interest in experimental backgrounds associated with light-ion collisions. In particular, electromagnetic dissociation of light ions while they are circulating in a collider can result in beam contamination that is difficult to simulate precisely. Here we propose a data-driven method for evaluating the potential impact of beam contaminants on physics analyses. The method exploits the time dependence and smaller size of contaminant ion species to define control regions that can be used to quantify potential contamination effects. A simple model is used to illustrate the method and to study its robustness. This method can inform studies of recent LHC and RHIC data and could also be useful for future light-ion programs at the LHC and beyond.
9 pages, 8 figures. Updated to correspond to the final published version
References in corpus (14)
- Collective flow and viscosity in relativistic heavy-ion collisions
- Heavy Ion Collisions: The Big Picture, and the Big Questions
- Evidence for collective multi-particle correlations in pPb collisions
- Measurements of the Nuclear Modification Factor for Jets in Pb+Pb Collisions at TeV with the ATLAS Detector
- Measurement of charged jet suppression in Pb-Pb collisions at TeV
- Measurement of inclusive jet cross sections in pp and PbPb collisions at sqrt(s[NN]) = 2.76 TeV
- Measurements of long-range azimuthal anisotropies and associated Fourier coefficients for collisions at and TeV and +Pb collisions at TeV with the ATLAS detector
- Absence of jet quenching in peripheral nucleus-nucleus collisions
- Measurements of multiparticle correlations in Au collisions at 200, 62.4, 39, and 19.6 GeV and Au collisions at 200 GeV and implications for collective behavior
- ABCDisCo: Automating the ABCD Method with Machine Learning
- Beam losses from ultra-peripheral nuclear collisions between Pb ions in the Large Hadron Collider and their alleviation
- at RHIC and the LHC comparing clustering vs substructure
- Exploring the compactness of cluster in O nuclei with relativistic O+O collisions
- Charting the Luminosity Capabilities of the CERN Large Hadron Collider with Various Nuclear Species