Zhang Yang, Ding Xing, Li Yang, Zhang Likang, Guo Yong-Peng, Wang Gao-Qiang, Ning Zhen, Xu Mo-Chi, Liu Run-Ze, Zhao Jun-Yi, Zou Geng-Yan, Wang Hui, Cao Yuan, He Yu-Ming, Peng Cheng-Zhi, Huo Yong-Heng, Liao Sheng-Kai, Lu Chao-Yang, Xu Feihu, Pan Jian-Wei
University of Science and Technology of China, University of Science and Technology of China, University of Science and Technology of China, Hefei National Research Center for Physical Sciences at the Microscale and School of Physical Sciences, Hefei 230026, China; Shanghai Research Center for Quantum Science and CAS Center for Excellence in Quantum Information and Quantum Physics, Shanghai 201315, China; and Hefei National Laboratory, Hefei 230088, China.
Phys Rev Lett. 2025 May 30;134(21):210801. doi: 10.1103/PhysRevLett.134.210801.
Quantum key distribution (QKD) offers a secure means of communication based on the laws of quantum physics. Despite its remarkable advancements, the current reliance of QKD on attenuated coherent (laser) light sources has imposed a fundamental limit on the secure key rate (SKR) per channel use. This constraint stems from the scarcity of single-photon components within coherent light, inherently bounded by a maximum of 1/e. Here, we report comprehensive demonstrations of single-photon-source-based high-rate QKD, surpassing the fundamental SKR limit imposed by the weak coherent light. By employing an on-demand, bright single-photon source with an efficiency of 0.71(2), coupled with narrow-bandwidth filtering and random polarization modulation, we demonstrated a field QKD trial over a 14.6(1.1) dB-loss free-space urban channel, achieving a SKR of 1.08×10^{-3} bits per pulse. This SKR surpasses the practical limit of weak coherent-light-based QKD by 79%. These findings unequivocally demonstrate the superior performance of single-photon sources over weak coherent light for QKD applications, marking a pivotal stride towards realizing a global quantum internet.
量子密钥分发(QKD)基于量子物理定律提供了一种安全的通信方式。尽管取得了显著进展,但目前QKD对衰减相干(激光)光源的依赖对每通道使用的安全密钥率(SKR)施加了基本限制。这种限制源于相干光中单光子成分的稀缺性,其固有上限为1/e。在此,我们报告了基于单光子源的高速QKD的全面演示,超越了弱相干光所施加的基本SKR限制。通过采用效率为0.71(2)的按需明亮单光子源,结合窄带滤波和随机偏振调制,我们在14.6(1.1)dB损耗的自由空间城市信道上进行了现场QKD试验,实现了每脉冲1.08×10^{-3}比特的SKR。这个SKR比基于弱相干光的QKD的实际极限高出79%。这些发现明确证明了单光子源在QKD应用中相对于弱相干光的卓越性能,标志着朝着实现全球量子互联网迈出了关键一步。