A new model for afterpulsing in neutron irradiated single-photon avalanche diodes

This paper presents a modeling approach to quantify afterpulsing in neutron-irradiated SPADs by combining an established analytical trapping/de-trapping model with trap parameters taken from published defect data and from NIEL displacement-damage scaling, and with the device fields and geometry obtained from numerical device simulation. The model assessment is performed for a 180 nm CMOS SPAD design and the model predicts a 28% increase in afterpulsing probability following exposure to a 1 MeV-neutron equivalent fluence of 4.29 × 10 10 n/cm 2 . The predicted magnitude and the predicted monotonic increase with excess bias are consistent with the afterpulsing levels and bias dependence reported in previous works for CMOS SPADs at comparable displacement-damage levels. A Monte-Carlo uncertainty analysis shows that, although the absolute afterpulsing probability inherits a wide uncertainty from the trap activation energies, the predicted relative increase is robust. The work provides a quantitative framework for predicting afterpulsing in irradiated SPADs, supporting the design of radiation-hardened devices for extreme environments such as space exploration and nuclear instrumentation.

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Publication Details

Journal
Microelectronics Reliability
Published
2026-10-05
DOI
https://doi.org/10.1016/j.microrel.2026.116325
Primary Topic
Radiation Effects in Electronics
Type
article
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article

A new model for afterpulsing in neutron irradiated single-photon avalanche diodes

Lodovico Ratti, Mohammad Azim Karami, Faezeh Golmohammad Saray, Ali Zarei
Microelectronics Reliability
Radiation Effects in Electronics
article

A new model for afterpulsing in neutron irradiated single-photon avalanche diodes

Lodovico Ratti, Mohammad Azim Karami, Faezeh Golmohammad Saray, Ali Zarei
article en

Abstract

This paper presents a modeling approach to quantify afterpulsing in neutron-irradiated SPADs by combining an established analytical trapping/de-trapping model with trap parameters taken from published defect data and from NIEL displacement-damage scaling, and with the device fields and geometry obtained from numerical device simulation. The model assessment is performed for a 180 nm CMOS SPAD design and the model predicts a 28% increase in afterpulsing probability following exposure to a 1 MeV-neutron equivalent fluence of 4.29 × 10 10 n/cm 2 . The predicted magnitude and the predicted monotonic increase with excess bias are consistent with the afterpulsing levels and bias dependence reported in previous works for CMOS SPADs at comparable displacement-damage levels. A Monte-Carlo uncertainty analysis shows that, although the absolute afterpulsing probability inherits a wide uncertainty from the trap activation energies, the predicted relative increase is robust. The work provides a quantitative framework for predicting afterpulsing in irradiated SPADs, supporting the design of radiation-hardened devices for extreme environments such as space exploration and nuclear instrumentation.

Microelectronics ReliabilityVol. 186
University of Pavia (IT), Iran University of Science and Technology (IR)
Openalex Percentile: Top 22%
Radiation Effects in Electronics
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A new model for afterpulsing in neutron irradiated single-photon avalanche diodes — Lodovico Ratti, Mohammad Azim Karami, et al. · Microelectronics Reliability (2026) | TGRS Research Map | TGRS