English

Radiative corrections to inverse muon decay for accelerator neutrinos

High Energy Physics - Phenomenology 2023-05-17 v3 High Energy Physics - Experiment Nuclear Experiment Nuclear Theory

Abstract

Inverse muon decay (νμeνeμ\nu_\mu e^- \to \nu_e \mu^-) is a promising tool to constrain neutrino fluxes with energies Eν10.9 GeVE_{\nu} \ge 10.9~\mathrm{GeV}. Radiative corrections introduce percent-level distortions to energy spectra of outgoing muons and depend on experimental details. In this paper, we calculate radiative corrections to the scattering processes νμeνeμ\nu_\mu e^- \to \nu_e \mu^- and νˉeeνˉμμ\bar{\nu}_e e^- \to \bar{\nu}_\mu \mu^-. We present the muon energy spectrum for both channels, double-differential distributions in muon energy and muon scattering angle and in photon energy and photon scattering angle, and the photon energy spectrum for the dominant νμeνeμ\nu_\mu e^- \to \nu_e \mu^- process. Our results clarify and extend the region of applicability of previous results in the literature for the double differential distribution in muon energy and photon energy, and in the muon energy spectrum with a radiated photon above a threshold energy. We provide analytic expressions for single, double and triple differential cross sections, and discuss how radiative corrections modify experimentally interesting observable distributions.

Keywords

Cite

@article{arxiv.2211.15947,
  title  = {Radiative corrections to inverse muon decay for accelerator neutrinos},
  author = {Oleksandr Tomalak and Kaushik Borah and Richard J. Hill and Kevin S. McFarland and Daniel Ruterbories},
  journal= {arXiv preprint arXiv:2211.15947},
  year   = {2023}
}

Comments

22 pages, 8 figures, version published in Physics Review D