DocumentCode :
1342850
Title :
Simulation of Silicon Photomultiplier Signals
Author :
Seifert, Stefan ; Van Dam, Herman T. ; Huizenga, Jan ; Vinke, Ruud ; Dendooven, Peter ; Löhner, Herbert ; Schaart, Dennis R.
Author_Institution :
Delft Univ. of Technol., Delft, Netherlands
Volume :
56
Issue :
6
fYear :
2009
Firstpage :
3726
Lastpage :
3733
Abstract :
In a silicon photomultiplier (SiPM), also referred to as multi-pixel photon counter (MPPC), many Geiger-mode avalanche photodiodes (GM-APDs) are connected in parallel so as to combine the photon counting capabilities of each of these so-called microcells into a proportional light sensor. The discharge of a single microcell is relatively well understood and electronic models exist to simulate this process. In this paper we introduce an extended model that is able to simulate the simultaneous discharge of multiple cells. This model is used to predict the SiPM signal in response to fast light pulses as a function of the number of fired cells, taking into account the influence of the input impedance of the SiPM preamplifier. The model predicts that the electronic signal is not proportional to the number of fired cells if the preamplifier input impedance is not zero. This effect becomes more important for SiPMs with lower parasitic capacitance (which otherwise is a favorable property). The model is validated by comparing its predictions to experimental data obtained with two different SiPMs (Hamamatsu S10362-11-25u and Hamamatsu S10362-33-25c) illuminated with ps laser pulses. The experimental results are in good agreement with the model predictions.
Keywords :
Geiger counters; avalanche photodiodes; capacitance; nuclear electronics; photomultipliers; photon counting; position sensitive particle detectors; preamplifiers; silicon radiation detectors; GM-APD; Geiger-mode avalanche photodiodes; Hamamatsu S10362-11-25u; Hamamatsu S10362-33-25c; MPPC; SiPM signal; electronic model; laser pulse; light sensor; multipixel photon counter; parasitic capacitance; preamplifier input impedance; silicon photomultiplier; Avalanche photodiodes; Counting circuits; Fast light; Impedance; Microcell networks; Optoelectronic and photonic sensors; Photomultipliers; Preamplifiers; Predictive models; Silicon; Equivalent circuit model; MPPC; SiPM; non-proportionality; simulation;
fLanguage :
English
Journal_Title :
Nuclear Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9499
Type :
jour
DOI :
10.1109/TNS.2009.2030728
Filename :
5341428
Link To Document :
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