Heterogeneously integrated, superconducting silicon-photonic platform for measurement-device-independent quantum key distribution
Xiaodong Zheng, Peiyu Zhang, Renyou Ge, Liangliang Lu, Guanglong He,, Qi Chen, Fangchao Qu, Labao Zhang, Xinlun Cai, Yanqing Lu, Shining Zhu,, Peiheng Wu, Xiao-Song Ma

TL;DR
This paper demonstrates a heterogeneously integrated superconducting silicon-photonic chip capable of performing optimal Bell-state measurements, significantly improving measurement-device-independent quantum key distribution rates and paving the way for scalable quantum networks.
Contribution
It introduces the first integrated superconducting-silicon-photonic chip capable of optimal Bell-state measurement for time-bin encoded qubits, enhancing QKD performance.
Findings
Achieved an increased key rate of nearly tenfold with time-multiplexing.
Demonstrated a secure key rate of 6.166 kbps over 24 dB loss.
Performed the first optimal Bell-state measurement of time-bin qubits from independent lasers.
Abstract
Integrated photonics provides a route both to miniaturize quantum key distribution (QKD) devices and to enhance 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 an integrated heterogeneous 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, 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…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
Taxonomy
TopicsQuantum Information and Cryptography · Photonic and Optical Devices · Neural Networks and Reservoir Computing
