Water Cherenkov muon veto for the COSINUS experiment: design and simulation optimization
G. Angloher, M. R. Bharadwaj, M. Cababie, I. Dafinei, N. Di Marco, L., Einfalt, F. Ferroni, S. Fichtinger, A. Filipponi, T. Frank, M. Friedl, Z. Ge,, M. Heikinheimo, M. N. Hughes, K. Huitu, M. Kellermann, R. Maji, M. Mancuso,, L. Pagnanini, F. Petricca, S. Pirro, F. Pr\"obst

TL;DR
This paper designs and optimizes a water Cherenkov muon veto system for the COSINUS dark matter experiment, achieving high muon detection efficiency to reduce background noise and improve detection sensitivity.
Contribution
It presents a novel optimization of the water Cherenkov veto system, including PMT arrangement and trigger conditions, to maximize muon veto efficiency for COSINUS.
Findings
Muon veto efficiency of 99.63% achieved
Reduces cosmogenic neutron background to 0.11 counts/kg/year
Minimizes accidental trigger rate while maintaining high efficiency
Abstract
COSINUS is a dark matter (DM) direct search experiment that uses sodium iodide (NaI) crystals as cryogenic calorimeters. Thanks to the low nuclear recoil energy threshold and event-by-event discrimination capability, COSINUS will address the long-standing DM claim made by the DAMA/LIBRA collaboration. The experiment is currently under construction at the Laboratori Nazionali del Gran Sasso, Italy, and employs a large cylindrical water tank as a passive shield to meet the required background rate. However, muon-induced neutrons can mimic a DM signal therefore requiring an active veto system, which is achieved by instrumenting the water tank with an array of photomultiplier tubes (PMTs). This study optimizes the number, arrangement, and trigger conditions of the PMTs as well as the size of an optically invisible region. The objective was to maximize the muon veto efficiency while…
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