Inclusive cross section measurements in final states with and without protons for charged-current νμ-Ar scattering in MicroBooNE
Metadatos
Mostrar el registro completo del ítemEditorial
American Physical Society
Fecha
2024-07-24Referencia bibliográfica
Abrantenko, P. & García Gámez, D. & MicroBooOne Collaboration, et. al. Phys. Rev. D 110, 013006. [https://doi.org/10.1103/PhysRevD.110.013006]
Patrocinador
MicroBooNE collaboration; The U.S. Department of Energy, Office of Science, Offices of High Energy Physics and Nuclear Physics; The U.S. National Science Foundation; The Swiss National Science Foundation; The Science and Technology Facilities Council (STFC), part of the United Kingdom Research and Innovation; The Royal Society (United Kingdom); The UK Research and Innovation (UKRI) Future Leaders Fellowship; The NSF AI Institute for Artificial Intelligence and Fundamental Interactions; Albert Einstein Center for Fundamental Physics, Bern, Switzerland; Fermi National Accelerator Laboratory (Fermilab) under Contract No. DE-AC02-07CH11359Resumen
A detailed understanding of inclusive muon neutrino charged-current interactions on argon is crucial to
the study of neutrino oscillations in current and future experiments using liquid argon time projection
chambers. To that end, we report a comprehensive set of differential cross section measurements for this
channel that simultaneously probe the leptonic and hadronic systems by dividing the channel into final
states with and without protons. Measurements of the proton kinematics and proton multiplicity of the final
state are also presented. For these measurements, we utilize data collected with the MicroBooNE detector
from 6.4 × 1020 protons on target from the Fermilab booster neutrino beam at a mean neutrino energy of
approximately 0.8 GeV. We present in detail the cross section extraction procedure, including the
unfolding, and model validation that uses data to model comparisons and the conditional constraint
formalism to detect mismodeling that may introduce biases to extracted cross sections that are larger than
their uncertainties. The validation exposes insufficiencies in the overall model, motivating the inclusion of
an additional data-driven reweighting systematic to ensure the accuracy of the unfolding. The extracted
results are compared to a number of event generators and their performance is discussed with a focus on the
regions of phase space that indicate the greatest need for modeling improvements.