Qualification study of SiPMs on a large scale or the CMVD Experiment

Mamta Jangra,Raj Bhupen,Gobinda Majumder,Kiran Gothe, Mandar Saraf,Nandkishor Parmar,B. Satyanarayana,R. R. Shinde, Shobha K. Rao, Suresh S Upadhya, Vivek M Datar, Douglas A. Glenzinski,Alan Bross, Anna Pla-Dalmau, Vishnu V. Zutshi, Robert Craig Group, E Craig Dukes

JOURNAL OF INSTRUMENTATION(2022)

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摘要
A Cosmic Muon Veto (CMV) detector using extruded plastic scintillators is being designed around the mini-Iron Calorimeter (mini-ICAL) detector at the transit campus of the India based Neutrino Observatory, Madurai for the feasibility study of shallow depth underground experiments. The scintillation signals that are produced in the plastic due to muon trajectories are absorbed by wavelength shifting (WLS) fibres. The WLS fibres re-emit photons of longer wavelengths and propagate those to silicon photo-multipliers (SiPMs). The SiPMs detect these photons, producing electronic signals. The CMV detector will use more than 700 scintillators to cover the mini-ICAL detector and will require around 3000 SiPMs. The design goal for the cosmic muon veto efficiency of the CMV is > 99.99%. Hence, every SiPM used in the detector needs to be tested and characterised to satisfy the design goal of CMV. A mass testing system was developed for the measurement of gain and choice of the overvoltage (V-OV) of each SiPMs using an LED driver. The V-OV is obtained by studying the noise rate, the gain of the SiPM. This paper describes the experimental setup used to test the SiPMs characteristics along with detailed studies of those characteristics as a function of temperature.
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Photon detectors for UV, visible and IR photons (solid-state) (PIN diodes, APDs, Si-PMTs, G-APDs, CCDs, EBCCDs, EMCCDs, CMOS imagers, etc), Solid state detectors, Scintillators, scintillation and light emission processes (solid, gas and liquid scintillators)
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