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Systematic study of nuclear effects in p+Al, p+Au, d+Au, and He 3 + Au collisions at sNN =200 GeV using π0 production

  • PHENIX Collaboration
  • Georgia State University
  • University of Colorado Boulder
  • University of Massachusetts
  • University of Michigan, Ann Arbor
  • Stony Brook University
  • RIKEN
  • Brookhaven National Lab
  • New Mexico State University
  • Howard University
  • Columbia University
  • High Energy Accelerator Research Organization, Tsukuba
  • Kyoto University
  • Iowa State University
  • The University of Tokyo
  • CNRS-IN2P3
  • Oak Ridge National Laboratory
  • United States Department of Energy
  • Institute for High Energy Physics
  • Brookhaven National Laboratory
  • Florida Institute of Technology
  • University of California at Riverside
  • University of New Mexico
  • Abilene Christian University
  • City University of New York
  • Petersburg Nuclear Physics InstituteGatchina
  • University of Münster
  • University of North Carolina at Greensboro
  • Vanderbilt University
  • Peter the Great St. Petersburg Polytechnic University
  • Yonsei University
  • Russian Research Centre Kurchatov Institute
  • Moscow Engineering Physics Institute

Research output: Contribution to journalArticlepeer-review

21 Scopus citations

Abstract

The PHENIX Collaboration presents a systematic study of inclusive π0 production from p+p, p+Al, p+Au, d+Au, and He3+Au collisions at sNN=200GeV. Measurements were performed with different centrality selections as well as the total inelastic, 0-100%, selection for all collision systems. For 0-100% collisions, the nuclear-modification factors, RxA, are consistent with unity for pT above 8GeV/c, but exhibit an enhancement in peripheral collisions and a suppression in central collisions. The enhancement and suppression characteristics are similar for all systems for the same centrality class. It is shown that for high-pT-π0 production, the nucleons in the d and He3 interact mostly independently with the Au nucleus and that the counterintuitive centrality dependence is likely due to a physical correlation between multiplicity and the presence of a hard scattering process. These observations disfavor models where parton energy loss has a significant contribution to nuclear modifications in small systems. Nuclear modifications at lower pT resemble the Cronin effect - an increase followed by a peak in central or inelastic collisions and a plateau in peripheral collisions. The peak height has a characteristic ordering by system size as p+Au>d+Au>He3+Au>p+Al. For collisions with Au ions, current calculations based on initial-state cold nuclear matter effects result in the opposite order, suggesting the presence of other contributions to nuclear modifications, in particular at lower pT.

Original languageEnglish
Article number064902
JournalPhysical Review C
Volume105
Issue number6
DOIs
StatePublished - Jun 2022

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