Progress and applications of superconducting-nanowire single-photon detectors

Authors

  • Muyun Lin

DOI:

https://doi.org/10.61173/vrr90z58

Keywords:

superconducting-nanowire single-photon detectors, quantum information, light detection and ranging, deep-space communication

Abstract

Photon detectors connect optical and electrical systems by converting light to electrical signals. Single photon detectors detect single photons which measure ultra-weak light. Traditional semiconductor single-photon detectors suffer from high dark count rates, low infrared detection efficiency, and poor temporal resolution. Superconducting-nanowire single-photon detectors (SNSPDs) overcome these limitations using the hotspot effect. SNSPDs have created a solid foundation for optical technologies and become key in quantum information, LiDARs and Deep-Space Communications. This paper reviews working principles and performance metrics: system detection efficiency, dark count rate, recovery time, and timing jitter. The study summarizes applications in quantum information (quantum key distribution, optical quantum computing), single-photon LiDAR, and deep-space optical communication, replacing most single-photon avalanche diodes (SPADs). Recent experiments show that SNSPD-based systems can achieve meter-scale detection of sea fog, interplanetary laser communication over billions of kilometers, and boson sampling with 20 photons. Ongoing research is expected to improve performance in maximum count rate, system integration, and cryogenic operation, as well as to find applications in emerging fields such as environmental monitoring.

References

[1] He, Daien, Leif Bauer, Sathwik Bharadwaj, and Zubin Jacob. "Unified Theory of Dark Count Rate and System Detection Efficiency for NbN, WSi Based Superconducting Single Photon Detectors." arXiv preprint arXiv: 2025, 2508.10816.

[2] Natarajan, Chandra M., Michael G. Tanner, and Robert H. Hadfield. "Superconducting nanowire single-photon detectors: physics and applications." Superconductor science and technology 25,2012, no. 6: 063001.

[3] Esmaeil Zadeh, Iman, J. Chang, Johannes WN Los, Samuel Gyger, Ali W. Elshaari, Stephan Steinhauer, Sander N. Dorenbos, and Val Zwiller. "Superconducting nanowire single-photon detectors: A perspective on evolution, state-of-the-art, future developments, and applications." Phys. Lett. 2021, 118, 190502

[4] You, Lixing. "Superconducting nanowire single-photon detectors for quantum information." Nanophotonics 9, 2020, no. 9: 2673-2692.

[5] Xu, Guang-Zhao, Wei-Jun Zhang, Li-Xing You, Jia- Min Xiong, Xing-Qu Sun, Hao Huang, Xin Ou et al. "Superconducting microstrip single-photon detector with system detection efficiency over 90% at 1550 nm." Photonics Research 9, 2021, no. 6: 958-967.

[6] H. Wang, J. Qin, X. Ding, et al., “Boson sampling with 20 input photons and a 60-mode interferometer in a 10^14-dimensional Hilbert space,” Phys. Rev. Lett., vol. 123, no. 25, p. 250503, 2019.

[7] Spinosa, S., Ercolano, P., Amoruso, S., Bukhari, S. M. J., Damiano, R., Ejrnaes, M., ... & Boselli, A. Application of a superconductor detector (SNSPD) for infrared atmospheric LiDAR measurements. Infrared Physics & Technology, 2024, 141, 105468.

[8] Zhu, Jiang, Yajun Chen, Labao Zhang, Xiaoqing Jia, Zhijun Feng, Ganhua Wu, Xiachao Yan et al. "Demonstration of measuring sea fog with an SNSPD-based LiDAR system." Scientific reports 7, 2017, no. 1: 15113.

[9] Wollman, Emma E., Jason P. Allmaras, Andrew D. Beyer, Boris Korzh, Marc C. Runyan, Lautaro Narváez, William H. Farr et al. "SNSPD-based detector system for NASA’s Deep Space Optical Communications project." Optics Express 32, 2024, no. 27: 48185-48198.

Downloads

Published

2026-08-13