Scintillation light detection in the 6-m drift-length ProtoDUNE Dual Phase liquid argon TPC

米漂移长度 ProtoDUNE 双相液氩 TPC 中的闪烁光检测

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作者:A Abed Abud, B Abi, R Acciarri, M A Acero, M R Adames, G Adamov, M Adamowski, D Adams, M Adinolfi, A Aduszkiewicz, J Aguilar, Z Ahmad, J Ahmed, B Aimard, B Ali-Mohammadzadeh, T Alion, K Allison, S Alonso Monsalve, M AlRashed, C Alt, A Alton, R Alvarez, P Amedo, J Anderson, C Andreopoulos, M Andreott

Abstract

DUNE is a dual-site experiment for long-baseline neutrino oscillation studies, neutrino astrophysics and nucleon decay searches. ProtoDUNE Dual Phase (DP) is a 6 ××<math><mo>×</mo></math> 6 ××<math><mo>×</mo></math> 6 m 33<math><msup><mrow></mrow> <mn>3</mn></msup> </math> liquid argon time-projection-chamber (LArTPC) that recorded cosmic-muon data at the CERN Neutrino Platform in 2019-2020 as a prototype of the DUNE Far Detector. Charged particles propagating through the LArTPC produce ionization and scintillation light. The scintillation light signal in these detectors can provide the trigger for non-beam events. In addition, it adds precise timing capabilities and improves the calorimetry measurements. In ProtoDUNE-DP, scintillation and electroluminescence light produced by cosmic muons in the LArTPC is collected by photomultiplier tubes placed up to 7 m away from the ionizing track. In this paper, the ProtoDUNE-DP photon detection system performance is evaluated with a particular focus on the different wavelength shifters, such as PEN and TPB, and the use of Xe-doped LAr, considering its future use in giant LArTPCs. The scintillation light production and propagation processes are analyzed and a comparison of simulation to data is performed, improving understanding of the liquid argon properties.

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