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Quasi-light Storage for Optical Data Packets
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阶段编码量子密钥分布在标准电信级光纤中长达380公里,通过基线错误优化实现
Nishant Kumar Pathak1, Sumit Chaudhary1, Sangeeta1
1Experimental Quantum Interferometry and Polarization (EQUIP), Department of Physics, Indian Institute of Technology Delhi, Hauz Khas, New Delhi, 110016, India.
Scientific reports
|September 22, 2023
概括
本研究提出了一种量子密钥分布 (QKD) 的新模型,以减少光纤通信中的错误. 改进后的模型可以在较长距离上进行安全的密钥交换,并且量子位错误率 (QBER) 较低.
科学领域:
- 量子信息科学 量子信息科学
- 光学通信系统 光学通信系统
- 密码学 密码学 密码学 密码学
背景情况:
- 量子密钥分布 (QKD) 中的相位编码对于安全的长距离通信至关重要.
- 实际的QKD系统面临来自激光线宽,探测器暗计数和通道分散的错误.
研究的目的:
- 开发一个理论模型来描述和减轻阶段编码QKD系统中的错误.
- 优化光脉冲参数以减少扭曲和提高QKD性能.
主要方法:
- 开发了一种用于相位编码QKD错误分析的新理论模型.
- 将模型应用于差分相位移 (DPS) QKD方案.
- 分析了不同检测器参数和纤维类型的系统性能.
主要成果:
- 通过QKD,在265公里处实现了193比特/秒的安全密钥速率.
- 使用标准电信组件,使用225公里的空前QBER<1%.
- 建立了高达380公里的安全钥匙,使用标准光纤和432公里的超低损耗光纤.
结论:
- 理论模型有效地减少了系统的缺陷,并降低了量子位误差率 (QBER).
- 优化的QKD系统与现有光纤网络兼容,可实现远距离,安全的通信.
- 这些发现适用于各种基于光纤的相位和时间编码协议.
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