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Measurement of higher cumulants of net-charge multiplicity distributions in Au + Au collisions at sNN =7.7-200 GeV

  • PHENIX Collaboration
  • University of Colorado Boulder
  • Joint Institute for Nuclear Research
  • Los Alamos National Laboratory
  • University of Massachusetts
  • University of Michigan, Ann Arbor
  • Stony Brook University
  • RIKEN
  • Brookhaven National Lab
  • The University of Tokyo
  • New Mexico State University
  • Columbia University
  • High Energy Accelerator Research Organization, Tsukuba
  • Kyoto University
  • Iowa State University
  • Brookhaven National Laboratory
  • Laboratoire Leprince-Ringuet
  • Oak Ridge National Laboratory
  • Institute for High Energy Physics
  • 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
  • Vanderbilt University
  • Peter the Great St. Petersburg Polytechnic University
  • Russian Research Centre Kurchatov Institute
  • Yonsei University

Research output: Contribution to journalArticlepeer-review

85 Scopus citations

Abstract

We report the measurement of cumulants (Cn,n=1,⋯,4) of the net-charge distributions measured within pseudorapidity (|η|<0.35) in Au+Au collisions at sNN=7.7-200GeV with the PHENIX experiment at the Relativistic Heavy Ion Collider. The ratios of cumulants (e.g., C1/C2, C3/C1) of the net-charge distributions, which can be related to volume independent susceptibility ratios, are studied as a function of centrality and energy. These quantities are important to understand the quantum-chromodynamics phase diagram and possible existence of a critical end point. The measured values are very well described by expectation from negative binomial distributions. We do not observe any nonmonotonic behavior in the ratios of the cumulants as a function of collision energy. The measured values of C1/C2 and C3/C1 can be directly compared to lattice quantum-chromodynamics calculations and thus allow extraction of both the chemical freeze-out temperature and the baryon chemical potential at each center-of-mass energy. The extracted baryon chemical potentials are in excellent agreement with a thermal-statistical analysis model.

Original languageEnglish
Article number011901
JournalPhysical Review C
Volume93
Issue number1
DOIs
StatePublished - Jan 19 2016

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