Unified model of nucleon elastic form factors and implications for neutrino-oscillation experiments
arXiv:1912.07797 · doi:10.1103/PhysRevD.102.074026
Abstract
Precise knowledge of the nucleon's axial-current form factors is crucial for modeling GeV-scale neutrino-nucleus interactions. Unfortunately, the axial form factor remains insufficiently constrained to meet the precision requirements of upcoming long-baseline neutrino-oscillation experiments. This work studies the nucleon's axial and vector form factors using the light-front approach to build a quark-diquark model of the nucleon with an explicit pion cloud. The light-front wave functions in both the quark and pion-baryon Fock spaces are first calibrated to existing experimental information on the nucleon's electromagnetic form factors, and then used to predict the axial form factor. The resulting squared charge radius of the axial pseudo-vector form factor is predicted to be , where the small error accounts for the model's parametric uncertainty. We use our form factor results to explore the (quasi-)elastic scattering of neutrinos by (nuclei)nucleons, with the result that the the widely-implemented dipole ansatz is an inadequate approximation of the full form factor for modeling both processes. The approximation leads to a over-estimation of the total cross section, depending on the (anti)neutrino energy. We project over-estimations of similar size in the flux-averaged cross sections for the upcoming DUNE long-baseline neutrino-oscillation experiment.
24 pages, 13 figures, 11 tables; include more discussion on pion-nucleon coupling; to be published in Phys.Rev.D
References in corpus (15)
- Nucleon Electromagnetic Form Factors
- Electromagnetic excitation of the Delta(1232)-resonance
- Determination of the Charged Pion Form Factor at Q2=1.60 and 2.45 (GeV/c)2
- Charged pion form factor between Q^2=0.60 and 2.45 GeV^2. II. Determination of, and results for, the pion form factor
- Proton and neutron electromagnetic form factors and uncertainties
- Electron- and neutrino-nucleus scattering from the quasielastic to the resonance region
- Vector and Axial Nucleon Form Factors:A Duality Constrained Parameterization
- Charged pion form factor between =0.60 and 2.45 GeV. I. Measurements of the cross section for the H() reaction
- Axial, induced pseudoscalar, and pion-nucleon form factors in manifestly Lorentz-invariant chiral perturbation theory
- Lattice QCD and Neutrino-Nucleus Scattering
- Electroweak structure of the nucleon, meson cloud and light-cone wavefunctions
- Neutrinoproduction of Photons and Pions From Nucleons in a Chiral Effective Field Theory for Nuclei
- On the effective theory of neutrino-electron and neutrino-quark interactions
- Nucleon Form Factors of the Isovector Axial-Vector Current: Situation of Experiments and Theory
- Ordinary muon capture on a proton in manifestly Lorentz invariant baryon chiral perturbation theory