1.Institute of Modern Physics, Chinese Academy of Sciences, Lanzhou 730000, China
2.Lanzhou University, Lanzhou 730000, China
3.University of Chinese Academy of Sciences, Beijing 100049, China
sunzhy@impcas.ac.cn
yuyuhong@impcas.ac.cn
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Yu Sun, Zhi-Yu Sun, Yu-Hong Yu, et al. Temperature dependence of CsI:Tl coupled to a PIN photodiode and a silicon photomultiplier. [J]. Nuclear Science and Techniques 30(2):27(2019)
Yu Sun, Zhi-Yu Sun, Yu-Hong Yu, et al. Temperature dependence of CsI:Tl coupled to a PIN photodiode and a silicon photomultiplier. [J]. Nuclear Science and Techniques 30(2):27(2019) DOI: 10.1007/s41365-019-0551-0.
With the aim of simulating the harsh temperature condition of space, a thallium-activated cesium iodide crystal (CsI:Tl) detector readout with a PIN photodiode (CsI:Tl(PD))and with a silicon photomultiplier (CsI:Tl(SiPM)) are investigated over a temperature range from -40° to 40°C. With the increase in temperature, the output signal increases by,∼,24% with CsI:Tl(PD) and decreases by ,∼,69% with CsI:Tl(SiPM). To reduce the effect of temperature in outer space, a method of bias voltage compensation is adopted for CsI:Tl(SiPM). Our study demonstrates that after correcting the temperature the variation in the analog-to-digital converter’s amplitude is ,<,3%.
CsI:TlSiPMPDtemperature dependencecorrection method
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