English

Confronting axial-vector form factor from lattice QCD with MINERvA antineutrino-proton data

High Energy Physics - Lattice 2023-10-25 v2 High Energy Physics - Experiment High Energy Physics - Phenomenology Nuclear Experiment Nuclear Theory

Abstract

We compare recent MINERvA antineutrino-hydrogen charged-current measurements to phenomenological predictions of the axial-vector form factor based on fits to all available electron scattering and deuterium bubble-chamber data and to representative lattice-QCD (LQCD) determination by the PNDME Collaboration. While there is 11--2σ2\sigma agreement in the cross section with MINERvA data for each bin in Q2Q^2, we identify three regions with different relevance and opportunity for LQCD predictions. For Q20.2 GeV2Q^2 \lesssim 0.2~\mathrm{GeV}^2, the phenomenological extractions have large number of data points and LQCD is competitive, while MINERvA data have large errors. For 0.2 GeV2Q21 GeV20.2~\mathrm{GeV}^2 \lesssim Q^2 \lesssim 1~\mathrm{GeV}^2, LQCD is competitive with the MINERvA determination, and both give values larger than from phenomenological extraction. For Q2>1 GeV2Q^2 > 1~\mathrm{GeV}^2, the MINERvA data are the most precise. Our analysis indicates that with improving precision of MINERvA-like experiments and LQCD data, the uncertainty in the nucleon axial-vector form factor will be steadily reduced.

Keywords

Cite

@article{arxiv.2307.14920,
  title  = {Confronting axial-vector form factor from lattice QCD with MINERvA antineutrino-proton data},
  author = {Oleksandr Tomalak and Rajan Gupta and Tanmoy Bhattacharya},
  journal= {arXiv preprint arXiv:2307.14920},
  year   = {2023}
}

Comments

7 pages, 4 figures, v2: version published in Physical Review D, minor changes in text and figures

R2 v1 2026-06-28T11:41:56.279Z