Non-Markovian property of afterpulsing effect in single-photon avalanche detector
arXiv:1606.01728 · doi:10.1109/JLT.2016.2577141
Abstract
The single-photon avalanche photodiode(SPAD) has been widely used in research on quantum optics. The afterpulsing effect, which is an intrinsic character of SPAD, affects the system performance in most experiments and needs to be carefully handled. For a long time, afterpulsing has been presumed to be determined by the pre-ignition avalanche. We studied the afterpulsing effect of a commercial InGaAs/InP SPAD (The avalanche photodiode model is: Princeton Lightwave PGA-300) and demonstrated that its afterpulsing is non-Markovian, with a memory effect in the avalanching history. Theoretical analysis and experimental results clearly indicate that the embodiment of this memory effect is the afterpulsing probability, which increases as the number of ignition-avalanche pulses increase. This conclusion makes the principle of the afterpulsing effect clearer and is instructive to the manufacturing processes and afterpulsing evaluation of high-count-rate SPADs. It can also be regarded as a fundamental premise to handle the afterpulsing signals in many applications, such as quantum communication and quantum random number generation.
9 pages, 5 figures. arXiv admin note: substantial text overlap with arXiv:1603.02360
References in corpus (3)
Cited by in corpus (6)
- Comparative study of afterpulsing behavior and models in single photon counting avalanche photo diode detectors
- Recent advances in InGaAs/InP single-photon detectors
- Counting Statistics of Actively Quenched SPADs Under Continuous Illumination
- Dead time duration and active reset influence on the afterpulse probability of InGaAs/InP single-photon avalanche diodes
- A universal simulating framework for quantum key distribution systems
- Experimental observation of anomalous supralinear response of single-photon detectors