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Titlebook: Single-Photon Avalanche Diodes and Photon Counting Systems; From Phototransducti Marc Dandin,Nicole McFarlane,Babak Nouri Book 2025 The Edi

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Optoelectronic Characteristics of Perimeter-Gated Single-Photon Avalanche Diodes,dard CMOS processes. We show the effects of perimeter gating on the .-SPADs’dark count rate (DCR),signal-to-noise ratio (SNR), sensitivity,spectral responsivity, and photoresponse nonuniformity (PRNU). First, we investigated a .-SPAD fabricated in a . CMOS process. We show that this .-SPAD had an ar
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Perimeter-Gated Single-Photon Avalanche Diode Imagers,imager can achieve vanishing room temperature dark count probabilities at relatively long exposure times and across the entire pixel array. Furthermore, we show that perimeter gating allows the reduction of thedark signal nonuniformity (DSNU), which is a component of the fixed-pattern noise arising
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Readout Strategies and Asynchronous Architectures,tubes. An SiPM’s readout circuit topology can significantly affect the characteristics of an imaging array. Innuclear imaging and detection, energy, timing, and position are the primary characteristics of interest.Nuclear imaging has applications in the medical, astronomy, and high-energy physics fi
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Dead Time Correction in Single-Photon Avalanche Diode Front Ends, correction model. Using a perimeter-gated SPAD (pg-SPAD), we setdark count rates and predetermined dead times in afront end under test in order to study the novel model’s efficacy. We found that the new model had a prediction error of about 2.1% compared to an 18.8% prediction error obtained from t
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Conclusions, Contributions, and Future Work,in standard CMOS processes. Although the state of the art is dominated by traditional CMOS SPAD architectures, the experimental results shown herein set perimeter-gated SPADs as viable substitutes for these architectures and even as an alternative that confers additional functionality. For example,
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ign stack.Guides readers through implementing experimental t.This book covers the latest trends in the design of single-photon avalanche diodes (SPADs), which are the front-end sensors in modern photon counting systems. The authors describe the fundamental physics that enable photon counting in thes
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