English

Nuclear Muon Capture in Hydrogen and its Interplay with Muon Atomic Physics

Nuclear Experiment 2019-08-13 v2

Abstract

The singlet capture rate ΛS\Lambda_S for the semileptonic weak process μ+pn+νμ\mu+p \to n+\nu_\mu has been measured in the MuCap experiment. The novel experimental technique is based on stopping muons in an active target, consisting of a time projection chamber operating with ultra-pure hydrogen. This allows the unambiguous determination of the pseudoscalar form factor gPg_P of the charged electroweak current of the nucleon. Our first result gP(q2=0.88mμ2)=7.3±1.1g_P(q^2=-0.88 m^2_\mu) = 7.3 \pm 1.1 is consistent with accurate theoretical predictions and constitutes an important test of QCD symmetries. Additional data are being collected with the aim of a three-fold reduction of the experimental uncertainties. Building on the developed advanced techniques, the new MuSun experiment is being planned to measure the muon capture rate on the deuteron to 1.5% precision. This would provide the by far most accurate experimental information on the axial current interacting with the two-nucleon system and determine the low energy constant L1AL_{1A} relevant for solar neutrino reactions. Muon induced atomic and molecular processes represent challenges as well as opportunities for this science program, and their interplay with the main nuclear and weak-interaction physics aspects will be discussed.

Keywords

Cite

@article{arxiv.0803.1892,
  title  = {Nuclear Muon Capture in Hydrogen and its Interplay with Muon Atomic Physics},
  author = {Peter Kammel},
  journal= {arXiv preprint arXiv:0803.1892},
  year   = {2019}
}

Comments

Invited talk at the International Conference on Muon Catalyzed Fusion and Related Topics (MCF-07), Dubna, 18-21 June, 2007; 4/1/08 Lattice references updated

R2 v1 2026-06-21T10:21:06.308Z