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A detailed map of Higgs boson interactions by the ATLAS experiment ten years after the discovery

  • The ATLAS collaboration
  • Aix-Marseille Université
  • University of Oklahoma
  • University of Massachusetts
  • University of Göttingen
  • United States Department of Energy
  • Mohammed V University in Rabat
  • Tel Aviv University
  • Technion-Israel Institute of Technology
  • New York University
  • Pontificia Universidad Católica de Chile
  • National Institute for Nuclear Physics
  • Abdus Salam International Centre for Theoretical Physics
  • King's College London
  • Johannes Gutenberg University Mainz
  • Université Savoie Mont Blanc
  • AGH University of Krakow
  • University of Toronto
  • Brandeis University
  • Northern Illinois University
  • Istanbul University
  • University of Geneva
  • Rutherford Appleton Laboratory
  • University of California at Santa Cruz
  • CERN
  • Institute for High Energy Physics
  • University of Pavia
  • Alexandru Ioan Cuza University of Iaşi
  • University of Granada
  • Azerbaijan National Academy of Sciences
  • McGill University
  • Royal Holloway University of London
  • German Electron Synchrotron
  • University of Rome Tor Vergata
  • Weizmann Institute of Science
  • Lund University
  • Columbia University
  • University of Victoria BC
  • Universidad Nacional de La Plata
  • University of Edinburgh

Research output: Contribution to journalArticlepeer-review

506 Scopus citations

Abstract

The standard model of particle physics1–4 describes the known fundamental particles and forces that make up our Universe, with the exception of gravity. One of the central features of the standard model is a field that permeates all of space and interacts with fundamental particles5–9. The quantum excitation of this field, known as the Higgs field, manifests itself as the Higgs boson, the only fundamental particle with no spin. In 2012, a particle with properties consistent with the Higgs boson of the standard model was observed by the ATLAS and CMS experiments at the Large Hadron Collider at CERN10,11. Since then, more than 30 times as many Higgs bosons have been recorded by the ATLAS experiment, enabling much more precise measurements and new tests of the theory. Here, on the basis of this larger dataset, we combine an unprecedented number of production and decay processes of the Higgs boson to scrutinize its interactions with elementary particles. Interactions with gluons, photons, and W and Z bosons—the carriers of the strong, electromagnetic and weak forces—are studied in detail. Interactions with three third-generation matter particles (bottom (b) and top (t) quarks, and tau leptons (τ)) are well measured and indications of interactions with a second-generation particle (muons, μ) are emerging. These tests reveal that the Higgs boson discovered ten years ago is remarkably consistent with the predictions of the theory and provide stringent constraints on many models of new phenomena beyond the standard model.

Original languageEnglish
Pages (from-to)52-59
Number of pages8
JournalNature
Volume607
Issue number7917
DOIs
StatePublished - Jul 7 2022

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