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Creation of quark–gluon plasma droplets with three distinct geometries

  • PHENIX Collaboration
  • University of Colorado Boulder
  • University of Michigan, Ann Arbor
  • RIKEN
  • Brookhaven National Lab
  • Howard University
  • High Energy Accelerator Research Organization, Tsukuba
  • Iowa State University
  • Kyoto University
  • Brookhaven National Laboratory
  • Institute for High Energy Physics
  • Eötvös Loránd University
  • University of Massachusetts
  • University of California at Riverside
  • City University of New York
  • Peter the Great St. Petersburg Polytechnic University
  • Russian Research Centre Kurchatov Institute
  • Moscow Engineering Physics Institute
  • Los Alamos National Laboratory
  • New Mexico State University
  • Georgia State University
  • Columbia University
  • Stony Brook University
  • University of Illinois at Urbana-Champaign
  • Jeonbuk National University
  • Weizmann Institute of Science
  • Hungarian University of Agriculture and Life Sciences
  • Hungarian Academy of Sciences
  • Ohio University
  • Abilene Christian University
  • University of New Mexico

Research output: Contribution to journalArticlepeer-review

269 Scopus citations

Abstract

Experimental studies of the collisions of heavy nuclei at relativistic energies have established the properties of the quark–gluon plasma (QGP), a state of hot, dense nuclear matter in which quarks and gluons are not bound into hadrons1–4. In this state, matter behaves as a nearly inviscid fluid5 that efficiently translates initial spatial anisotropies into correlated momentum anisotropies among the particles produced, creating a common velocity field pattern known as collective flow. In recent years, comparable momentum anisotropies have been measured in small-system proton–proton (p+p) and proton–nucleus (p+A) collisions, despite expectations that the volume and lifetime of the medium produced would be too small to form a QGP. Here we report on the observation of elliptic and triangular flow patterns of charged particles produced in proton–gold (p+Au), deuteron–gold (d+Au) and helium–gold (3He+Au) collisions at a nucleon–nucleon centre-of-mass energy sNN = 200 GeV. The unique combination of three distinct initial geometries and two flow patterns provides unprecedented model discrimination. Hydrodynamical models, which include the formation of a short-lived QGP droplet, provide the best simultaneous description of these measurements.

Original languageEnglish
Pages (from-to)214-220
Number of pages7
JournalNature Physics
Volume15
Issue number3
DOIs
StatePublished - Mar 1 2019

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