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Muon capture on the deuteron in chiral effective field theory

Jose Bonilla, Bijaya Acharya, and Lucas Platter
Phys. Rev. C 107, 065502 – Published 5 June 2023

Abstract

We consider the capture of a muon on a deuteron. An uncertainty analysis of the dominant channels is important for a careful analysis of forthcoming experimental data. We quantify the theoretical uncertainties of chiral effective-field-theory predictions of the muon-deuteron capture rate from the relevant neutron-neutron partial wave channels in the final state. We study the dependence on the cutoff used to regularize the interactions, low-energy constants calibrated using different fitting data and strategies, and truncation of the effective-field-theory expansion of the currents. Combining these approaches gives as an estimate of Γμd1/2=399.1±7.6±4.4s1 for capture from the atomic doublet state, and Γμd3/2=12.31±0.47±0.04s1 for capture from the quartet state and the first and second uncertainties given here are due to the effective field theory truncation error and the uncertainty in the axial radius, respectively.

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  • Received 29 December 2022
  • Accepted 11 May 2023

DOI:https://doi.org/10.1103/PhysRevC.107.065502

©2023 American Physical Society

Physics Subject Headings (PhySH)

Nuclear Physics

Authors & Affiliations

Jose Bonilla1,*, Bijaya Acharya2,†, and Lucas Platter1,2,3,4,‡

  • 1Department of Physics and Astronomy, University of Tennessee, Knoxville, Tennessee 37996, USA
  • 2Physics Division, Oak Ridge National Laboratory, Oak Ridge, Tennessee 37831, USA
  • 3Institut für Kernphysik, Technische Universität Darmstadt, 64289 Darmstadt, Germany
  • 4ExtreMe Matter Institute EMMI, GSI Helmholtzzentrum für Schwerionenforschung GmbH, 64291 Darmstadt, Germany

  • *jbonilla@vols.utk.edu
  • bid@ornl.gov
  • lplatter@utk.edu

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Issue

Vol. 107, Iss. 6 — June 2023

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Images

  • Figure 1
    Figure 1

    Top panel: Differential capture rate results for the doublet channel f=1/2 calculated without final state interactions. Bottom panel: Differential capture rate results for the doublet channel f=1/2 calculated with final state interactions. The solid lines give the results for different nn partial wave channels. The dashed solid lines give the total differential capture rate.

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  • Figure 2
    Figure 2

    Top panel: Differential capture rate results for the quartet channel f=3/2 calculated without final state interactions. Bottom panel: Differential capture rate results for the quartet channel f=3/2 calculated with final state interactions. The solid lines give the results for different nn partial wave channels. The dashed solid lines give the total differential capture rate.

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  • Figure 3
    Figure 3

    Top panel: Total muon capture rate on the deuteron evaluated for the doublet channel. Bottom panel: Total muon capture rate on the deuteron evaluated for the quartet channel. Results include contributions for the nn channels up to J2. Each point represents the result obtained with one of the 42 NNLOsim potentials at order Q3 from Ref. [25]. Results with the same cutoffs are connected by a line to guide the eye.

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