Calorimetry for low-energy electrons using charge and light in liquid argon
W. Foreman, R. Acciarri, J. A. Asaadi, W. Badgett, F. d. M. Blaszczyk,, R. Bouabid, C. Bromberg, R. Carey, F. Cavanna, J. I. Cevallos Aleman, A., Chatterjee, J. Evans, A. Falcone, W. Flanagan, B.T. Fleming, D. Garcia-Gomez,, B. Gelli, T. Ghosh, R. A. Gomes, E. Gramellini

TL;DR
This study demonstrates that combining charge and light measurements in liquid argon time projection chambers significantly improves the energy resolution for low-energy electrons, aiding neutrino physics research.
Contribution
The paper introduces a light-augmented calorimetry method for low-energy electrons in LArTPCs, enhancing energy reconstruction accuracy over traditional charge-only techniques.
Findings
Achieved ~9.3%/√E + 1.3% energy resolution in LArIAT.
Light-augmented calorimetry improves resolution by up to 40%.
Higher light yields significantly enhance energy measurement precision.
Abstract
Precise calorimetric reconstruction of 5-50 MeV electrons in liquid argon time projection chambers (LArTPCs) will enable the study of astrophysical neutrinos in DUNE and could enhance the physics reach of oscillation analyses. Liquid argon scintillation light has the potential to improve energy reconstruction for low-energy electrons over charge-based measurements alone. Here we demonstrate light-augmented calorimetry for low-energy electrons in a single-phase LArTPC using a sample of Michel electrons from decays of stopping cosmic muons in the LArIAT experiment at Fermilab. Michel electron energy spectra are reconstructed using both a traditional charge-based approach as well as a more holistic approach that incorporates both charge and light. A maximum-likelihood fitter, using LArIAT's well-tuned simulation, is developed for combining these quantities to achieve optimal energy…
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