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Peter Christiansen Profile

Peter Christiansen

Professor

Peter Christiansen Profile

Observation of partonic flow in proton—proton and proton—nucleus collisions

Author

  • S. Acharya
  • S. Basu
  • P. Christiansen
  • J. Hansen
  • K.E. Iversen
  • R. Nepeivoda
  • A. Ohlson
  • I. Panasenko
  • D. Silvermyr
  • J. Staa
  • N. Zurlo

Summary, in English

Quantum Chromodynamics predicts a phase transition from hadronic matter to quark–gluon plasma (QGP) at high temperatures and energy densities, where quarks and gluons (partons) are no longer confined within hadrons. The QGP forms in ultrarelativistic heavy-ion collisions. Anisotropic flow coefficients, quantifying the azimuthal expansion of produced matter, probe QGP properties. Flow measurements in high-energy heavy-ion collisions show a distinctive grouping of anisotropic flow for baryons and mesons at intermediate transverse momentum – a feature associated with flow imparted at the quark level, confirming QGP existence. The observation of QGP-like features in proton–proton and proton–ion collisions has sparked debate about QGP formation in smaller systems. For the first time, we demonstrate the distinctive grouping of anisotropic flow for baryons and mesons in high-multiplicity proton–lead and proton–proton collisions at the Large Hadron Collider (LHC). These results are described by a model including hydrodynamic flow followed by hadron formation via quark coalescence, consistent with the formation of partonic flowing systems in these collisions. © The Author(s) 2026.

Department/s

  • Particle and nuclear physics

Publishing year

2026

Language

English

Publication/Series

Nature Communications

Volume

17

Issue

1

Document type

Article

Publisher

Nature Publishing Group

Topic

  • Subatomic Physics

Keywords

  • proton
  • coalescence
  • collision
  • hydrodynamics
  • momentum
  • phase transition
  • plasma
  • Article
  • gluon
  • hadron
  • high temperature
  • quark

Status

Published

ISBN/ISSN/Other

  • ISSN: 2041-1723