【2h】

Quantum communication with coherent states of light

机译:与相干光态的量子通信

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摘要

Quantum communication offers long-term security especially, but not only, relevant to government and industrial users. It is worth noting that, for the first time in the history of cryptographic encoding, we are currently in the situation that secure communication can be based on the fundamental laws of physics (information theoretical security) rather than on algorithmic security relying on the complexity of algorithms, which is periodically endangered as standard computer technology advances. On a fundamental level, the security of quantum key distribution (QKD) relies on the non-orthogonality of the quantum states used. So even coherent states are well suited for this task, the quantum states that largely describe the light generated by laser systems. Depending on whether one uses detectors resolving single or multiple photon states or detectors measuring the field quadratures, one speaks of, respectively, a discrete- or a continuous-variable description. Continuous-variable QKD with coherent states uses a technology that is very similar to the one employed in classical coherent communication systems, the backbone of today’s Internet connections. Here, we review recent developments in this field in two connected regimes: (i) improving QKD equipment by implementing front-end telecom devices and (ii) research into satellite QKD for bridging long distances by building upon existing optical satellite links.This article is part of the themed issue ‘Quantum technology for the 21st century’.
机译:量子通信可提供长期的安全性,特别是但不仅限于与政府和工业用户有关。值得注意的是,在密码编码的历史上,我们目前第一次处于一种安全通信的状况,该通信可以基于物理的基本定律(信息理论安全性),而不是基于依赖于复杂性的算法安全性。算法,随着标准计算机技术的发展而定期受到威胁。从根本上讲,量子密钥分发(QKD)的安全性取决于所使用量子态的非正交性。因此,即使相干态也非常适合此任务,量子态在很大程度上描述了激光系统产生的光。取决于是使用解析单个或多个光子状态的检测器还是测量场正交的检测器,人们分别说的是离散变量或连续变量描述。具有相干状态的连续变量QKD使用的技术与经典相干通信系统(当今的Internet连接的骨干)中使用的技术非常相似。在这里,我们回顾了该领域在两个相互联系的领域中的最新发展:(i)通过实施前端电信设备来改进QKD设备;(ii)通过建立现有的光学卫星链路来研究卫星QKD以桥接长距离。主题问题“面向21世纪的量子技术”的一部分。

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