Title :
Intelligent System for Optimal Hold-Off Time Selection in an Active Quench and Reset IC
Author :
Cronin, Donal ; Morrison, Alan P.
Author_Institution :
Univ. Coll. Cork, Cork
Abstract :
A signal processing circuit using autocorrelation statistics that intelligently selects the optimal hold-off time in an active quench and reset integrated circuit (AQR-IC) is presented. This circuit optimizes the hold-off time to reduce afterpulsing effects in any Geiger-mode avalanche photodiode (GM-APD). The described AQR-IC has a maximum count rate of 20 Mcounts/s, includes a subnanosecond comparator for quickly detecting incident photons, and incorporates a novel technique, based on silicon delay lines, for selecting 1 of 16 predefined, discrete, hold-off times between 5 and 660 ns. The accompanying hold-off time autotuning circuit sets the optimal hold-off time by assigning a 4-b output to the AQR-IC corresponding to the minimization of afterpulse effects in the GM-APD. The configuration sequence completes in a maximum time of 20 s, without operator intervention, and only requires repeating if the GM-APD is changed.
Keywords :
active networks; avalanche photodiodes; circuit optimisation; comparators (circuits); correlation methods; integrated circuit design; quenching (thermal); Geiger-mode avalanche photodiode; active quench and reset integrated circuit; afterpulse effects; autocorrelation statistics; autotuning circuit sets; circuit optimization; hold off time selection; incident photon; intelligent system; signal processing circuit; silicon delay lines; subnanosecond comparator; time 20 s; time 5 ns to 660 ns; Autocorrelation; Avalanche photodiodes; Breakdown voltage; Detectors; Event detection; Intelligent systems; Optical sensors; Optoelectronic and photonic sensors; Photonic integrated circuits; Statistics; Afterpulsing; Geiger-mode avalanche photodiode (GM-APD); active quench and reset integrated circuit (AQR-IC); autocorrelation; autotuning; hold-off time; single-photon counting;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2007.902087