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Direct measurement of the muonic content of extensive air showers between 2× 1017 and 2×1018 eV at the Pierre Auger Observatory

  • The Pierre Auger Collaboration
  • Observatorio Pierre Auger and Comisión Nacional de Energía Atómica
  • Radboud University Nijmegen
  • Instituto Superior Tecnico
  • Sezione di Torino
  • INAF-IAPS
  • University of Adelaide
  • CNEA-UNCuyo-CONICET
  • Instituto de Tecnologías en Detección y Astropartículas (CNEA CONICET UNSAM)
  • Universidad Tecnológica Nacional
  • Universidad Nacional Autonoma de Mexico
  • Universidad de Santiago de Compostela
  • Università di Torino and Sezione INFN
  • Lehman College
  • Sezione di Napoli
  • RWTH Aachen University
  • University Politehnica of Bucharest
  • Institute of Physics of the Czech Academy of Sciences
  • 'Horia Hulubei' National Institute for Physics and Nuclear Engineering
  • Università di Napoli 'Federico II' and Sezione INFN
  • Bergische Universität Wuppertal
  • UJF-Grenoble 1/CNRS-INSU
  • Université Paris 11
  • Laboratori Nazionali del Gran Sasso
  • Universidade Federal do Rio de Janeiro
  • University of São Paulo
  • Institute of Nuclear Physics PAN
  • Universität Siegen
  • Universidad de Granada
  • Vrije Universiteit Brussel
  • Sezione di Catania
  • Università di Catania and Sezione INFN
  • Universidad Autónoma de Chiapas
  • Università degli Studi di Milano
  • Universidad Nacional de la Plata and CONICET

Research output: Contribution to journalArticlepeer-review

69 Scopus citations

Abstract

The hybrid design of the Pierre Auger Observatory allows for the measurement of the properties of extensive air showers initiated by ultra-high energy cosmic rays with unprecedented precision. By using an array of prototype underground muon detectors, we have performed the first direct measurement, by the Auger Collaboration, of the muon content of air showers between 2 × 10 17 and 2 × 10 18 eV. We have studied the energy evolution of the attenuation-corrected muon density, and compared it to predictions from air shower simulations. The observed densities are found to be larger than those predicted by models. We quantify this discrepancy by combining the measurements from the muon detector with those from the Auger fluorescence detector at 1017.5eV and 1018eV. We find that, for the models to explain the data, an increase in the muon density of 38 % ± 4 % (12 %) ±18%21% for EPOS-LHC, and of 50 % (53 %) ± 4 % (13 %) ±20%23% for QGSJetII-04, is respectively needed.

Original languageBritish English
Article number751
JournalEuropean Physical Journal C
Volume80
Issue number8
DOIs
StatePublished - 1 Aug 2020

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