Abstract

Particle detectors at future collider experiments will operate at high collision rates and thus will have to face high pile up and a harsh radiation environment. Precision timing capabilities can help in the reconstruction of physics events by mitigating pile up effects. In this context, radiation tolerant, scintillating crystals coupled to silicon photomultipliers (SiPMs) can provide a flexible and compact option for the implementation of a precision timing layer inside large particle detectors. In this paper, we compare the timing performance of aluminum garnet crystals (YAG: Ce, LuAG: Ce, GAGG: Ce) and the improvements of their time resolution by means of codoping with Mg2+ ions. The crystals were read out using SiPMs from Hamamatsu glued to the rear end of the scintillator and their timing performance was evaluated by measuring the coincidence time resolution (CTR) of 150GeV charged pions traversing a pair of crystals. The influence of crystal properties, such as density, light yield and decay kinetics on the timing performance is discussed.The best single detector time resolutions are in the range of 23–30ps (sigma) and only achieved by codoping the garnet crystals with divalent ions, such as Mg2+. The much faster scintillation decay in the co-doped samples as compared to non co-doped garnets explains the higher timing performance. Samples of LSO: Ce, Ca and LYSO:Ce crystals have also been used as reference time device and showed a time resolution at the level of 17ps, in agreement with previous results.

Highlights

  • The capability to precisely measure the time of interaction of ionizing particles using radiation detectors is becoming a crucial aspect in medical imaging and high energy physics experiments

  • In this paper we investigate and discuss the improved timing capabilities of garnet crystals codoped with Mg2+ ions (YAG, LuAG, GAGG), for high energy physics applications

  • By comparing the coincidence time resolution of an identical pair of reference crystals+silicon photomultipliers (SiPMs) it is possible to estimate the time resolution of the single reference detector as: Fig. 2

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Summary

Introduction

The capability to precisely measure the time of interaction of ionizing particles using radiation detectors is becoming a crucial aspect in medical imaging and high energy physics experiments. Previous studies demonstrated the capability to achieve sub-20 ps time resolution using devices consisting of L(Y)SO:Ce and LSO: Ce, Ca crystals read out with silicon photomultipliers (SiPM) [6]. In this context, LSO:Ce and LYSO:Ce crystals represent excellent candidates for timing applications due to their high light yield (40000 ph/MeV) and relatively fast decay time (40 ns). In this paper we investigate and discuss the improved timing capabilities of garnet crystals codoped with Mg2+ ions (YAG, LuAG, GAGG), for high energy physics applications. An overview of the optical and scintillation properties of the crystals is given and discussed in relation to the timing performance achieved for detection of 150 GeV pions

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