通过自适应光学改进自由空间连续变量量子密钥分布
Mikhael T Sayat1,2,3,4, Marcus Birch5,6, Michael Copeland6
1Quantum Innovation Centre (Q.InC), Agency for Science Technology and Research (A*STAR), 2 Fusionopolis Way, Innovis #08-03, Singapore, 138634, Republic of Singapore. mikhael_sayat@a-star.edu.sg.
Scientific reports
|January 24, 2026
概括
流通过扭曲信号来降低自由空间量子密钥分布 (CVQKD). 接收器上的自适应光学可以纠正这些扭曲,在动荡环境中显著改善CVQKD性能和关键速率.
科学领域:
- 量子信息科学 量子信息科学
- 光学工程是指光学工程.
- 大气光学是大气光学.
背景情况:
- 自由空间量子密钥分布 (CVQKD) 容易受到大气流引起的性能降低的影响.
- 流会在传输的量子信号波线中引发相位和振幅偏差.
- 这导致量子信号和局部振荡器 (LO) 之间的干扰度可见性降低.
研究的目的:
- 调查流对CVQKD系统中干扰度可见性的影响.
- 为了证明自适应光学 (AO) 在减轻流引起的偏差的有效性.
- 使用AO量化CVQKD绩效指标的改进.
主要方法:
- 连贯状态传输通过60厘米和30米的流道进行.
- 测量了带有和没有自适应光学校正的干扰度可见性.
- 进行了通道表征,以评估波面偏差.
- 理论上分析了在理想的CVQKD系统中对秘密密钥速率的影响.
主要成果:
- 在流道中观察到干扰度可见度的下降.
- 适应光学显著提高了干扰度可见性,并减少了其波动.
- 鉴定证实了AO能够纠正相位和振幅偏差的能力.
- 模拟表明,AO导致更精确和更高的秘密密钥率.
结论:
- 适应光学是一种可行的解决方案,可以抵消自由空间CVQKD中的流效应.
- 在接收器上实施AO可以提高CVQKD系统的稳定性和关键生成率.
- 这项工作提高了大气通道安全量子通信的实际可行性.
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