Advanced Photonics, Volume. 3, Issue 5, 055002(2021)
Heterogeneously integrated, superconducting silicon-photonic platform for measurement-device-independent quantum key distribution Article Video
Fig. 1. Schematic of a time-multiplexed MDI-QKD and a star-like MDI-QKD network. (a) Schematic of a time-multiplexed MDI-QKD with optimal BSM. Alice and Bob send time-bin encoded qubits to Charlie for exchanging keys. By detecting the coincidence (red) between the early (
Fig. 2. Experimental device and setup. (a) Schematic of the experiment setup. Alice (Bob) employs a CW laser as the LS and encodes the keys into optical pulses with an encoder module. In this module, one intensity modulator (IM1) chops out early (
Fig. 3. Experimental results of optimal BSM and QBER. (a) BSM results of
Fig. 4. Enhanced key rate by time-multiplexing. (a) The sifted key rate as a function of the inserted pulse number within the full-recovery time of SNSPD (12 ns). Red squares are the results of optimal BSM and blue squares are the results of
Fig. 5. The key rate at different losses including chip insertion loss. The solid lines show theoretical simulations and the triangle symbols show experimental results with a loss of 24.0, 35.0, and 44.0 dB, respectively. For different losses, the parameters (the intensities,
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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, "Heterogeneously integrated, superconducting silicon-photonic platform for measurement-device-independent quantum key distribution," Adv. Photon. 3, 055002 (2021)
Category: Letters
Received: Jun. 17, 2021
Accepted: Sep. 29, 2021
Published Online: Nov. 1, 2021
The Author Email: Zhang Labao (lzhang@nju.edu.cn), Cai Xinlun (caixlun5@mail.sysu.edu.cn), Ma Xiao-Song (xiaosong.ma@nju.edu.cn)