Your browser doesn't support javascript.
loading
Leading hadronic contribution to the muon magnetic moment from lattice QCD.
Borsanyi, Sz; Fodor, Z; Guenther, J N; Hoelbling, C; Katz, S D; Lellouch, L; Lippert, T; Miura, K; Parato, L; Szabo, K K; Stokes, F; Toth, B C; Torok, Cs; Varnhorst, L.
Affiliation
  • Borsanyi S; Department of Physics, University of Wuppertal, Wuppertal, Germany.
  • Fodor Z; Department of Physics, University of Wuppertal, Wuppertal, Germany. fodor@bodri.elte.hu.
  • Guenther JN; Jülich Supercomputing Centre, Forschungszentrum Jülich, Jülich, Germany. fodor@bodri.elte.hu.
  • Hoelbling C; Department of Physics, Pennsylvania State University, University Park, PA, USA. fodor@bodri.elte.hu.
  • Katz SD; Institute for Theoretical Physics, Eötvös University, Budapest, Hungary. fodor@bodri.elte.hu.
  • Lellouch L; Department of Physics, University of California, San Diego, La Jolla, CA, USA. fodor@bodri.elte.hu.
  • Lippert T; Department of Physics, University of Regensburg, Regensburg, Germany.
  • Miura K; Aix Marseille Université, Université de Toulon, CNRS, CPT, IPhU, Marseille, France.
  • Parato L; Department of Physics, University of Wuppertal, Wuppertal, Germany.
  • Szabo KK; Institute for Theoretical Physics, Eötvös University, Budapest, Hungary.
  • Stokes F; Aix Marseille Université, Université de Toulon, CNRS, CPT, IPhU, Marseille, France.
  • Toth BC; Department of Physics, University of Wuppertal, Wuppertal, Germany.
  • Torok C; Jülich Supercomputing Centre, Forschungszentrum Jülich, Jülich, Germany.
  • Varnhorst L; Aix Marseille Université, Université de Toulon, CNRS, CPT, IPhU, Marseille, France.
Nature ; 593(7857): 51-55, 2021 05.
Article in En | MEDLINE | ID: mdl-33828303
ABSTRACT
The standard model of particle physics describes the vast majority of experiments and observations involving elementary particles. Any deviation from its predictions would be a sign of new, fundamental physics. One long-standing discrepancy concerns the anomalous magnetic moment of the muon, a measure of the magnetic field surrounding that particle. Standard-model predictions1 exhibit disagreement with measurements2 that is tightly scattered around 3.7 standard deviations. Today, theoretical and measurement errors are comparable; however, ongoing and planned experiments aim to reduce the measurement error by a factor of four. Theoretically, the dominant source of error is the leading-order hadronic vacuum polarization (LO-HVP) contribution. For the upcoming measurements, it is essential to evaluate the prediction for this contribution with independent methods and to reduce its uncertainties. The most precise, model-independent determinations so far rely on dispersive techniques, combined with measurements of the cross-section of electron-positron annihilation into hadrons3-6. To eliminate our reliance on these experiments, here we use ab initio quantum chromodynamics (QCD) and quantum electrodynamics simulations to compute the LO-HVP contribution. We reach sufficient precision to discriminate between the measurement of the anomalous magnetic moment of the muon and the predictions of dispersive methods. Our result favours the experimentally measured value over those obtained using the dispersion relation. Moreover, the methods used and developed in this work will enable further increased precision as more powerful computers become available.

Full text: 1 Collection: 01-internacional Database: MEDLINE Type of study: Prognostic_studies Language: En Journal: Nature Year: 2021 Document type: Article Affiliation country:

Full text: 1 Collection: 01-internacional Database: MEDLINE Type of study: Prognostic_studies Language: En Journal: Nature Year: 2021 Document type: Article Affiliation country:
...