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Counting near-infrared single-photons with 95% efficiency

Optics Express · 2008 · Vol. 16(5) · pp. 3032–3032
Adriana E. LitaAaron MillerSae Woo Nam

Abstract

Single-photon detectors operating at visible and near-infrared wavelengths with high detection efficiency and low noise are a requirement for many quantum-information applications. Superconducting transition-edge sensors (TESs) are capable of detecting visible and near-infrared light at the single-photon level and are capable of discriminating between one- and two-photon absorption events; however these capabilities place stringent design requirements on the TES heat capacity, thermometry, and optical detection efficiency. We describe the fabrication and evaluation of a fiber-coupled, photon-number-resolving TES detector optimized for absorption at 1550 and 1310 nm wavelengths. The measured system detection efficiency at 1556 nm is 95 % +/- 2 %, which to our knowledge is the highest system detection efficiency reported for a near-infrared single-photon detector.

Quantum Information and CryptographySuperconducting and THz Device TechnologyMechanical and Optical ResonatorsOpticsDetectorPhoton countingPhotonInfraredOptoelectronicsAbsorption (acoustics)Quantum efficiencyMaterials scienceWavelength

MeSH terms

Equipment DesignPhotometryRadiation DosageRadiometrySensitivity and SpecificitySpectrophotometry, InfraredTransducersReproducibility of ResultsPhotonsEquipment Failure Analysis

Funding

  • National Institute of Standards and Technology
  • Intelligence Advanced Research Projects Activity
Citations
716
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64.36
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16
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Cited by
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References
Quantum cryptography based on Bell’s theorem
Physical Review Letters · 1991 · 10,462 citations
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