Muon and Cosmogenic Neutron Detection in Borexino
Borexino Collaboration : G. Bellini, J. Benziger, D. Bick, S. Bonetti,, M. Buizza Avanzini, B. Caccianiga, L. Cadonati, F. Calaprice, C. Carraro, A., Chavarria, A. Chepurnov, D. D'Angelo, S. Davini, A. Derbin, A. Etenko, F. von, Feilitzsch, K. Fomenko, D. Franco, C. Galbiati

TL;DR
This paper details the design, implementation, and performance of muon and neutron detection systems in the Borexino detector, achieving high efficiency and precise track reconstruction crucial for background suppression in neutrino detection.
Contribution
It introduces novel track reconstruction algorithms and demonstrates their high efficiency and accuracy in identifying muons and cosmogenic neutrons in Borexino.
Findings
Muon veto efficiency exceeds 99.992%
Angular resolution of 3-5 degrees achieved
Lateral resolution of 35-50 cm demonstrated
Abstract
Borexino, a liquid scintillator detector at LNGS, is designed for the detection of neutrinos and antineutrinos from the Sun, supernovae, nuclear reactors, and the Earth. The feeble nature of these signals requires a strong suppression of backgrounds below a few MeV. Very low intrinsic radiogenic contamination of all detector components needs to be accompanied by the efficient identification of muons and of muon-induced backgrounds. Muons produce unstable nuclei by spallation processes along their trajectory through the detector whose decays can mimic the expected signals; for isotopes with half-lives longer than a few seconds, the dead time induced by a muon-related veto becomes unacceptably long, unless its application can be restricted to a sub-volume along the muon track. Consequently, not only the identification of muons with very high efficiency but also a precise reconstruction of…
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