First Measurement of Quasielastic Λ Baryon Production in Muon Antineutrino Interactions in the MicroBooNE Detector
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American Physical Society
Date
2023-06-09Referencia bibliográfica
P. Abratenko et al. (MicroBooNE Collaboration). First Measurement of Quasielastic Λ Baryon Production in Muon Antineutrino Interactions in the MicroBooNE Detector. Phys. Rev. Lett. 130, 231802. [https://doi.org/10.1103/PhysRevLett.130.231802]
Sponsorship
U.S. Department of Energy, Office of Science, HEP User Facility: Fermi National Accelerator Laboratory (Fermilab); Fermi Research Alliance, LLC (FRA) DE-AC02-07CH11359; U.S. Department of Energy, Office of Science, Offices of High Energy Physics and Nuclear Physics; U.S. National Science Foundation; Swiss National Science Foundation; United Kingdom Research and Innovation, Science and Technology Facilities Council (STFC); Royal Society; UK Research and Innovation (UKRI) Future Leaders Fellowship; Centro Albert Einstein de Física Fundamental, Berna, Suiza.; MicroBooNEAbstract
We present the first measurement of the cross section of Cabibbo-suppressed Λ baryon production, using data collected with the MicroBooNE detector when exposed to the neutrinos from the main injector beam at the Fermi National Accelerator Laboratory. The data analyzed correspond to 2.2×10^{20} protons on target running in neutrino mode, and 4.9×10^{20} protons on target running in anti-neutrino mode. An automated selection is combined with hand scanning, with the former identifying five candidate Λ production events when the signal was unblinded, consistent with the GENIE prediction of 5.3±1.1 events. Several scanners were employed, selecting between three and five events, compared with a prediction from a blinded Monte Carlo simulation study of 3.7±1.0 events. Restricting the phase space to only include Λ baryons that decay above MicroBooNE's detection thresholds, we obtain a flux averaged cross section of 2.0_{-1.7}^{+2.2}×10^{-40} cm^{2}/Ar, where statistical and systematic uncertainties are combined.