Superconducting Nanowire Single-Photon Detector With a System Detection Efficiency Over 80% at 940-nm Wavelength

Implementations of quantum information require single-photon detectors (SPDs) with high detection efficiency (DE) at a wavelength of 940 nm, which is a challenge for the available semiconducting SPDs. Superconducting nanowire SPDs (SNSPDs) are capable of detecting visible and near-infrared single ph...

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Main Authors: W. J. Zhang, H. Li, L. X. You, J. Huang, Y. H. He, L. Zhang, X. Y. Liu, S. J. Chen, Z. Wang, X. M. Xie
Format: Article
Language:English
Published: IEEE 2016-01-01
Series:IEEE Photonics Journal
Subjects:
Online Access:https://ieeexplore.ieee.org/document/7434560/
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spelling doaj-080f3aaf575c4ed58115fa4bb93d5b362021-03-29T17:29:16ZengIEEEIEEE Photonics Journal1943-06552016-01-01821810.1109/JPHOT.2016.25428387434560Superconducting Nanowire Single-Photon Detector With a System Detection Efficiency Over 80% at 940-nm WavelengthW. J. Zhang0H. Li1L. X. You2J. Huang3Y. H. He4L. Zhang5X. Y. Liu6S. J. Chen7Z. Wang8X. M. Xie9State Key Lab. of Functional Mater. for Inf., Shanghai Inst. of Microsyst. & Inf. Technol., Beijing, ChinaState Key Lab. of Functional Mater. for Inf., Shanghai Inst. of Microsyst. & Inf. Technol., Beijing, ChinaState Key Lab. of Functional Mater. for Inf., Shanghai Inst. of Microsyst. & Inf. Technol., Beijing, ChinaState Key Lab. of Functional Mater. for Inf., Shanghai Inst. of Microsyst. & Inf. Technol., Beijing, ChinaState Key Lab. of Functional Mater. for Inf., Shanghai Inst. of Microsyst. & Inf. Technol., Beijing, ChinaState Key Lab. of Functional Mater. for Inf., Shanghai Inst. of Microsyst. & Inf. Technol., Beijing, ChinaState Key Lab. of Functional Mater. for Inf., Shanghai Inst. of Microsyst. & Inf. Technol., Beijing, ChinaState Key Lab. of Functional Mater. for Inf., Shanghai Inst. of Microsyst. & Inf. Technol., Beijing, ChinaState Key Lab. of Functional Mater. for Inf., Shanghai Inst. of Microsyst. & Inf. Technol., Beijing, ChinaState Key Lab. of Functional Mater. for Inf., Shanghai Inst. of Microsyst. & Inf. Technol., Beijing, ChinaImplementations of quantum information require single-photon detectors (SPDs) with high detection efficiency (DE) at a wavelength of 940 nm, which is a challenge for the available semiconducting SPDs. Superconducting nanowire SPDs (SNSPDs) are capable of detecting visible and near-infrared single photons with high DE. However, these detection capabilities place stringent design requirements on the cavity and nanowire geometry structures. We design, fabricate, and measure SNSPDs with high DE optimized for the 940-nm wavelength. The NbN SNSPDs were fabricated on 1-D photonic crystals for high optical absorptance. By tuning the filling factor of the nanowire through numerical simulations and experiments, we were able to obtain an SNSPD (7 nm thick, 125 nm width, and 0.57 filling factor, as well as active area of 18 * 18 μm) with a saturated system DE of 83.6 ± 3.7%, at a dark count rate of 10 Hz, and a low polarization dependence of 1.17 ± 0.02. To our best knowledge, this is the highest value reported for NbN SNSPDs at 940-nm wavelength. The availability of an SNSPD with high system DE at 940 nm may have a profound impact in the field of photonic quantum technologies, such as multiphoton entanglement.https://ieeexplore.ieee.org/document/7434560/Niobium nitride (NbN)superconducting nanowire single-photon detectors (SNSPDs)system detection efficiencyquantum information
collection DOAJ
language English
format Article
sources DOAJ
author W. J. Zhang
H. Li
L. X. You
J. Huang
Y. H. He
L. Zhang
X. Y. Liu
S. J. Chen
Z. Wang
X. M. Xie
spellingShingle W. J. Zhang
H. Li
L. X. You
J. Huang
Y. H. He
L. Zhang
X. Y. Liu
S. J. Chen
Z. Wang
X. M. Xie
Superconducting Nanowire Single-Photon Detector With a System Detection Efficiency Over 80% at 940-nm Wavelength
IEEE Photonics Journal
Niobium nitride (NbN)
superconducting nanowire single-photon detectors (SNSPDs)
system detection efficiency
quantum information
author_facet W. J. Zhang
H. Li
L. X. You
J. Huang
Y. H. He
L. Zhang
X. Y. Liu
S. J. Chen
Z. Wang
X. M. Xie
author_sort W. J. Zhang
title Superconducting Nanowire Single-Photon Detector With a System Detection Efficiency Over 80% at 940-nm Wavelength
title_short Superconducting Nanowire Single-Photon Detector With a System Detection Efficiency Over 80% at 940-nm Wavelength
title_full Superconducting Nanowire Single-Photon Detector With a System Detection Efficiency Over 80% at 940-nm Wavelength
title_fullStr Superconducting Nanowire Single-Photon Detector With a System Detection Efficiency Over 80% at 940-nm Wavelength
title_full_unstemmed Superconducting Nanowire Single-Photon Detector With a System Detection Efficiency Over 80% at 940-nm Wavelength
title_sort superconducting nanowire single-photon detector with a system detection efficiency over 80% at 940-nm wavelength
publisher IEEE
series IEEE Photonics Journal
issn 1943-0655
publishDate 2016-01-01
description Implementations of quantum information require single-photon detectors (SPDs) with high detection efficiency (DE) at a wavelength of 940 nm, which is a challenge for the available semiconducting SPDs. Superconducting nanowire SPDs (SNSPDs) are capable of detecting visible and near-infrared single photons with high DE. However, these detection capabilities place stringent design requirements on the cavity and nanowire geometry structures. We design, fabricate, and measure SNSPDs with high DE optimized for the 940-nm wavelength. The NbN SNSPDs were fabricated on 1-D photonic crystals for high optical absorptance. By tuning the filling factor of the nanowire through numerical simulations and experiments, we were able to obtain an SNSPD (7 nm thick, 125 nm width, and 0.57 filling factor, as well as active area of 18 * 18 μm) with a saturated system DE of 83.6 ± 3.7%, at a dark count rate of 10 Hz, and a low polarization dependence of 1.17 ± 0.02. To our best knowledge, this is the highest value reported for NbN SNSPDs at 940-nm wavelength. The availability of an SNSPD with high system DE at 940 nm may have a profound impact in the field of photonic quantum technologies, such as multiphoton entanglement.
topic Niobium nitride (NbN)
superconducting nanowire single-photon detectors (SNSPDs)
system detection efficiency
quantum information
url https://ieeexplore.ieee.org/document/7434560/
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