Full metadata record
DC Field | Value | Language |
---|---|---|
dc.contributor.author | Kim, Eo-Jin | - |
dc.contributor.author | Choi, Hyun-Seung | - |
dc.contributor.author | Eom, Doyoon | - |
dc.contributor.author | Kim, Joo-Hyun | - |
dc.contributor.author | Zheng, Ping | - |
dc.contributor.author | Toh, Eng-Huat | - |
dc.contributor.author | Quek, Elgin | - |
dc.contributor.author | Kandasamy, Deepthi | - |
dc.contributor.author | Chow, Yew Tuck | - |
dc.contributor.author | Choi, Woo-Young | - |
dc.contributor.author | Lee, Myung-Jae | - |
dc.date.accessioned | 2025-04-25T06:00:09Z | - |
dc.date.available | 2025-04-25T06:00:09Z | - |
dc.date.created | 2025-04-25 | - |
dc.date.issued | 2025-09 | - |
dc.identifier.issn | 1077-260X | - |
dc.identifier.uri | https://pubs.kist.re.kr/handle/201004/152296 | - |
dc.description.abstract | Single-photon avalanche diodes (SPADs) are emerging as a cost-effective and practical alternative to superconducting nanowire single-photon detectors (SNSPDs), especially for integrated quantum photonics. While SNSPDs exhibit excellent performance such as fast response time and high detection efficiency, their reliance on a cryogenic cooling system results in high cost and power consumption as well as limited suitability for portable devices. In contrast, SPADs can operate at room temperature, eliminating the need for a bulky cooling system and significantly reducing the overall cost. Compared to SNSPDs, however, further optimization of SPAD performance is highly required. In this paper, the SPAD guard-ring (GR) structure is optimized with accurate SPAD device modeling and TCAD simulation, aiming to enhance their suitability for integrated quantum photonics applications. It is demonstrated that the GR-optimized SPAD can reduce internal series resistance and extend its avalanche multiplication region. As a result, the avalanche multiplication region is expanded by approximately 20%, and the peak photon detection probability at a wavelength of 425 nm is increased by 48% . This improvement is achieved while maintaining a low dark count rate of 3.9 cps/mu m(2) at an excess bias voltage of 3 V. Additionally, the reduced series resistance enables an increase in current gain and a faster slew rate, which results in much lower timing jitter. | - |
dc.language | English | - |
dc.publisher | Institute of Electrical and Electronics Engineers | - |
dc.title | Modeling-Based Optimization of a Single-Photon Avalanche Diode: Towards Integrated Quantum Photonics Devices Operating at Room-Temperature | - |
dc.type | Article | - |
dc.identifier.doi | 10.1109/JSTQE.2025.3552673 | - |
dc.description.journalClass | 1 | - |
dc.identifier.bibliographicCitation | IEEE Journal on Selected Topics in Quantum Electronics, v.31, no.5 | - |
dc.citation.title | IEEE Journal on Selected Topics in Quantum Electronics | - |
dc.citation.volume | 31 | - |
dc.citation.number | 5 | - |
dc.description.isOpenAccess | Y | - |
dc.description.journalRegisteredClass | scie | - |
dc.description.journalRegisteredClass | scopus | - |
dc.identifier.wosid | 001465439600002 | - |
dc.identifier.scopusid | 2-s2.0-105000888383 | - |
dc.relation.journalWebOfScienceCategory | Engineering, Electrical & Electronic | - |
dc.relation.journalWebOfScienceCategory | Quantum Science & Technology | - |
dc.relation.journalWebOfScienceCategory | Optics | - |
dc.relation.journalWebOfScienceCategory | Physics, Applied | - |
dc.relation.journalResearchArea | Engineering | - |
dc.relation.journalResearchArea | Physics | - |
dc.relation.journalResearchArea | Optics | - |
dc.type.docType | Article | - |
dc.subject.keywordAuthor | Single-photon avalanche diodes | - |
dc.subject.keywordAuthor | Resistance | - |
dc.subject.keywordAuthor | Integrated circuit modeling | - |
dc.subject.keywordAuthor | Photonics | - |
dc.subject.keywordAuthor | Mathematical models | - |
dc.subject.keywordAuthor | Equivalent circuits | - |
dc.subject.keywordAuthor | Optimization | - |
dc.subject.keywordAuthor | Junctions | - |
dc.subject.keywordAuthor | Timing jitter | - |
dc.subject.keywordAuthor | Analytical models | - |
dc.subject.keywordAuthor | Detector | - |
dc.subject.keywordAuthor | device optimization | - |
dc.subject.keywordAuthor | diode | - |
dc.subject.keywordAuthor | equivalent circuit model | - |
dc.subject.keywordAuthor | integrated quantum photonics | - |
dc.subject.keywordAuthor | modeling | - |
dc.subject.keywordAuthor | optical sensing | - |
dc.subject.keywordAuthor | optical sensor | - |
dc.subject.keywordAuthor | photodetector | - |
dc.subject.keywordAuthor | quantum applications | - |
dc.subject.keywordAuthor | quantum key distribution (QKD) | - |
dc.subject.keywordAuthor | single-photon avalanche diode (SPAD) | - |
dc.subject.keywordAuthor | single-photon detector | - |
dc.subject.keywordAuthor | TCAD simulation | - |
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