Title :
Response of Inorganic Scintillators to Neutrons of 3 and 15 MeV Energy
Author :
Lucchini, Maristella ; Pauwels, Karl ; Pizzichemi, Marco ; Chipaux, R. ; Jacquot, F. ; Mazue, H. ; Wolff, H. ; Lecoq, P. ; Auffray, E.
Author_Institution :
CERN, Geneva, Switzerland
Abstract :
In the perspective of the development of future high energy physics experiments, homogeneous calorimeters based on inorganic scintillators can be considered for the detection of hadrons (e.g., calorimeter based on dual-readout technique). Although of high importance in the high energy physics framework as well as for homeland security applications, the response of these inorganic scintillators to neutrons has been only scarcely investigated. This paper presents results obtained using five common scintillating crystals (of size around 2×2×2 cm3), namely lead tungstate (PbWO4), bismuth germanate (BGO), cerium fluoride (CeF ), Ce-doped lutetium-yttrium orthosilicate (LYSO:Ce) and lutetium aluminum garnet (LuAG:Ce) in a pulsed flux of almost mono-energetic (~3 MeV and ~15 MeV) neutrons provided by the Van de Graff accelerator SAMES of CEA Valduc. Energy spectra have been recorded, calibrated and compared with Geant4 simulations computed with different physics models. The neutron detection efficiency for these crystals has been estimated and compared with simulation.
Keywords :
bismuth compounds; cerium; cerium compounds; garnets; lead compounds; lutetium compounds; neutron detection; nuclear electronics; particle calorimetry; readout electronics; solid scintillation detectors; yttrium compounds; Bi4Ge3O12; CEA Valduc; CeF3; Geant4 simulations; Lu1.8Y0.2SiO5:Ce; Lu3Al5O12:Ce; Van de Graff accelerator SAMES; dual-readout technique; electron volt energy 3 MeV to 15 MeV; energy spectra; future high energy physics experiments; hadron detection; high energy physics framework; homeland security applications; homogeneous calorimeters; inorganic scintillators; monoenergetic neutrons; neutron detection efficiency; physics models; pulsed flux; scintillating crystals; Computational modeling; Crystals; Data models; Energy resolution; Neutrons; Physics; Shape; Geant4 simulation; inorganic scintillators; neutrons; pulse shape discrimination;
Journal_Title :
Nuclear Science, IEEE Transactions on
DOI :
10.1109/TNS.2013.2280462