TY - JOUR
T1 - Calibration of the charge and energy loss per unit length of the MicroBooNE liquid argon time projection chamber using muons and protons
AU - Szelc, Andrzej
AU - Söldner-Rembold, Stefan
AU - Evans, Justin
AU - Guzowski, Pawel
AU - Mcconkey, Nicola
AU - Basque, Vincent Marc
AU - Furmanski, Andrew
AU - Goodwin, Owen
AU - Porzio, Salvatore Davide
AU - Garcia Gamez, Diego
AU - Mistry, Krishan
AU - Green, Patrick
PY - 2020/3/24
Y1 - 2020/3/24
N2 - We describe a method used to calibrate the position- and time-dependent response of the MicroBooNE liquid argon time projection chamber anode wires to ionization particle energy loss. The method makes use of crossing cosmic-ray muons to partially correct anode wire signals for multiple effects as a function of time and position, including cross-connected TPC wires, space charge effects, electron attachment to impurities, diffusion, and recombination. The overall energy scale is then determined using fully-contained beam-induced muons originating and stopping in the active region of the detector. Using this method, we obtain an absolute energy scale uncertainty of 2% in data. We use stopping protons to further refine the relation between the measured charge and the energy loss for highly-ionizing particles. This data-driven detector calibration improves both the measurement of total deposited energy and particle identification based on energy loss per unit length as a function of residual range. As an example, the proton selection efficiency is increased by 2% after detector calibration.
AB - We describe a method used to calibrate the position- and time-dependent response of the MicroBooNE liquid argon time projection chamber anode wires to ionization particle energy loss. The method makes use of crossing cosmic-ray muons to partially correct anode wire signals for multiple effects as a function of time and position, including cross-connected TPC wires, space charge effects, electron attachment to impurities, diffusion, and recombination. The overall energy scale is then determined using fully-contained beam-induced muons originating and stopping in the active region of the detector. Using this method, we obtain an absolute energy scale uncertainty of 2% in data. We use stopping protons to further refine the relation between the measured charge and the energy loss for highly-ionizing particles. This data-driven detector calibration improves both the measurement of total deposited energy and particle identification based on energy loss per unit length as a function of residual range. As an example, the proton selection efficiency is increased by 2% after detector calibration.
U2 - 10.1088/1748-0221/15/03/P03022
DO - 10.1088/1748-0221/15/03/P03022
M3 - Article
SN - 1748-0221
JO - Journal of Instrumentation
JF - Journal of Instrumentation
ER -