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joachiha

Joachim Hansen

SMARTHEP PhD student ESR10

joachiha

Observation of deuteron and antideuteron formation from resonance-decay nucleons

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

High-energy hadronic collisions generate environments characterized by temperatures above 100 MeV (refs. 1,2), about 100,000 times hotter than the centre of the Sun. At present, it is therefore unclear how light (anti)nuclei with mass number A of a few units, such as the deuteron, 3He or 4He, each bound by only a few MeV, can emerge from these collisions3,4. Here, the ALICE Collaboration reports that deuteron–pion momentum correlations in proton–proton (pp) collisions provide model-independent evidence that about 90% of the observed (anti)deuterons are produced in nuclear reactions5 following the decay of short-lived resonances, such as the Δ(1232). These findings, obtained by the ALICE Collaboration at the Large Hadron Collider, resolve a gap in our understanding of nucleosynthesis in ultrarelativistic hadronic collisions. Apart from offering insights on how (anti)nuclei are formed in hadronic collisions, the results can be used in the modelling of the production of light and heavy nuclei in cosmic rays6 and dark-matter decays7,8. © The Author(s) 2025.

Department/s

  • Particle and nuclear physics

Publishing year

2025

Language

English

Pages

306-311

Publication/Series

Nature

Volume

648

Issue

8093

Document type

Article

Publisher

Nature Publishing Group

Topic

  • Subatomic Physics

Keywords

  • proton
  • cosmic ray
  • light effect
  • momentum
  • numerical model
  • observational method
  • resonance
  • article
  • diagnosis
  • hadron
  • nucleon
  • pion
  • sun
  • temperature
  • therapy

Status

Published

ISBN/ISSN/Other

  • ISSN: 0028-0836