Compact and fully functional high-frequency sine wave gating InGaAs/InP single-photon detector module

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Xu, Qi, Yu, Chao, Cui, Dajian, Zhang, Xuan-Yi, Chen, Wei, Fang, Yu-Qiang, Jiang, Lianjun, Tong, Qixia, Zhao, Jianglin, Zhang, Jun
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866909527420436480
author Xu, Qi
Yu, Chao
Cui, Dajian
Zhang, Xuan-Yi
Chen, Wei
Fang, Yu-Qiang
Jiang, Lianjun
Tong, Qixia
Zhao, Jianglin
Zhang, Jun
author_facet Xu, Qi
Yu, Chao
Cui, Dajian
Zhang, Xuan-Yi
Chen, Wei
Fang, Yu-Qiang
Jiang, Lianjun
Tong, Qixia
Zhao, Jianglin
Zhang, Jun
contents High-frequency sine wave gating (SWG) InGaAs/InP single-photon detectors (SPDs) are widely used for synchronous near-infrared single-photon detection. For practical use, the size of SPD is one of the most concerning features for system integration. Here we present, to the best of our knowledge, the most compact and fully functional high-frequency SWG InGaAs/InP SPD. We develop a sine wave gating integrated circuit (SWGIC) using system-in-package technology that supports functions including large amplitude sine wave gate generation, coincidence gate generation, phase regulation, amplitude monitoring, and amplitude modulation. Moreover, we design and fabricate a high-performance multi-mode fiber coupled InGaAs/InP single-photon avalanche diode (SPAD) with a compact butterfly package. Furthermore, we implement a monolithically integrated readout circuit (MIRC) to extract the weak avalanche signal from large capacitance response of SWG. Finally, the SWGIC, SPAD, MIRC, and the affiliated circuits are integrated into a single module with a size of 6 cm x 5.7 cm x 1.7 cm. After characterization, the SPD module exhibits a photon detection efficiency of 40%, a dark count rate of 9 kcps, and an afterpulse probability of 4.6% at an operation temperature of 238 K and a hold-off time of 160 ns. Our work provides a practical solution for applications necessitating highly integrated near-infrared single-photon detection.
format Preprint
id arxiv_https___arxiv_org_abs_2503_04173
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Compact and fully functional high-frequency sine wave gating InGaAs/InP single-photon detector module
Xu, Qi
Yu, Chao
Cui, Dajian
Zhang, Xuan-Yi
Chen, Wei
Fang, Yu-Qiang
Jiang, Lianjun
Tong, Qixia
Zhao, Jianglin
Zhang, Jun
Optics
Instrumentation and Detectors
Quantum Physics
High-frequency sine wave gating (SWG) InGaAs/InP single-photon detectors (SPDs) are widely used for synchronous near-infrared single-photon detection. For practical use, the size of SPD is one of the most concerning features for system integration. Here we present, to the best of our knowledge, the most compact and fully functional high-frequency SWG InGaAs/InP SPD. We develop a sine wave gating integrated circuit (SWGIC) using system-in-package technology that supports functions including large amplitude sine wave gate generation, coincidence gate generation, phase regulation, amplitude monitoring, and amplitude modulation. Moreover, we design and fabricate a high-performance multi-mode fiber coupled InGaAs/InP single-photon avalanche diode (SPAD) with a compact butterfly package. Furthermore, we implement a monolithically integrated readout circuit (MIRC) to extract the weak avalanche signal from large capacitance response of SWG. Finally, the SWGIC, SPAD, MIRC, and the affiliated circuits are integrated into a single module with a size of 6 cm x 5.7 cm x 1.7 cm. After characterization, the SPD module exhibits a photon detection efficiency of 40%, a dark count rate of 9 kcps, and an afterpulse probability of 4.6% at an operation temperature of 238 K and a hold-off time of 160 ns. Our work provides a practical solution for applications necessitating highly integrated near-infrared single-photon detection.
title Compact and fully functional high-frequency sine wave gating InGaAs/InP single-photon detector module
topic Optics
Instrumentation and Detectors
Quantum Physics
url https://arxiv.org/abs/2503.04173