4.5 Article

Heterogeneously integrated, superconducting silicon-photonic platform for measurement-device-independent quantum key distribution

期刊

ADVANCED PHOTONICS
卷 3, 期 5, 页码 -

出版社

SPIE-SOC PHOTO-OPTICAL INSTRUMENTATION ENGINEERS
DOI: 10.1117/1.AP.3.5.055002

关键词

quantum key distribution; hybrid photonics; single-photon detector; Bell-state measurement; time-multiplexing

类别

资金

  1. National Key Research and Development Program of China [2017YFA0303704, 2019YFA0308700, 2017YFA0304002]
  2. National Natural Science Foundation of China [11690032, 11321063, 12033002]
  3. NSFC-BRICS [61961146001]
  4. Leading-Edge Technology Program of Jiangsu Natural Science Foundation [BK20192001]
  5. Fundamental Research Funds for the Central Universities

向作者/读者索取更多资源

Integrated photonics offers a way to miniaturize and enhance the performance of quantum key distribution (QKD) devices, with single-photon detectors being a key element. By integrating detectors onto photonic chips and utilizing time-bin encoded qubits and optimal Bell-state measurements, the key rate of measurement-device-independent QKD (MDI-QKD) can be increased, laying the foundation for a QKD network with untrusted relays.
Integrated photonics provides a route to both miniaturization of quantum key distribution (QKD) devices and enhancing their performance. A key element for achieving discrete-variable QKD is a single-photon detector. It is highly desirable to integrate detectors onto a photonic chip to enable the realization of practical and scalable quantum networks. We realize a heterogeneously integrated, superconducting silicon-photonic chip. Harnessing the unique high-speed feature of our optical waveguide-integrated superconducting detector, we perform the first optimal Bell-state measurement (BSM) of time-bin encoded qubits generated from two independent lasers. The optimal BSM enables an increased key rate of measurement-device-independent QKD (MDI-QKD), which is immune to all attacks against the detection system and hence provides the basis for a QKD network with untrusted relays. Together with the time-multiplexed technique, we have enhanced the sifted key rate by almost one order of magnitude. With a 125-MHz clock rate, we obtain a secure key rate of 6.166 kbps over 24.0 dB loss, which is comparable to the state-of-the-art MDI-QKD experimental results with a GHz clock rate. Combined with integrated QKD transmitters, a scalable, chip-based, and cost-effective QKD network should become realizable in the near future.

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