English

Deuterium target data for precision neutrino-nucleus cross sections

High Energy Physics - Phenomenology 2016-07-07 v3 High Energy Physics - Experiment Nuclear Experiment Nuclear Theory

Abstract

Amplitudes derived from scattering data on elementary targets are basic inputs to neutrino-nucleus cross section predictions. A prominent example is the isovector axial nucleon form factor, FA(q2)F_A(q^2), which controls charged current signal processes at accelerator-based neutrino oscillation experiments. Previous extractions of FAF_A from neutrino-deuteron scattering data rely on a dipole shape assumption that introduces an unquantified error. A new analysis of world data for neutrino-deuteron scattering is performed using a model-independent, and systematically improvable, representation of FAF_A. A complete error budget for the nucleon isovector axial radius leads to rA2=0.46(22)fm2r_A^2=0.46(22) \,{\rm fm}^2, with a much larger uncertainty than determined in the original analyses. The quasielastic neutrino-neutron cross section is determined as σ(νμnμp)Eν=1GeV=10.1(0.9)×1039cm2\sigma(\nu_\mu n \to \mu^- p)\big|_{E_\nu =1\,{\rm GeV}} = 10.1(0.9) \times 10^{-39}{\rm cm}^2. The propagation of nucleon-level constraints and uncertainties to nuclear cross sections is illustrated using MINERvA data and the GENIE event generator. These techniques can be readily extended to other amplitudes and processes.

Keywords

Cite

@article{arxiv.1603.03048,
  title  = {Deuterium target data for precision neutrino-nucleus cross sections},
  author = {Aaron S. Meyer and Minerba Betancourt and Richard Gran and Richard J. Hill},
  journal= {arXiv preprint arXiv:1603.03048},
  year   = {2016}
}

Comments

17 pages, 9 figures. v2: Supplementary data included, minor typos corrected. v3: replaced with published version

R2 v1 2026-06-22T13:07:35.978Z