论文标题

太空中的量子中继器

Quantum repeaters in space

论文作者

Liorni, Carlo, Kampermann, Hermann, Bruss, Dagmar

论文摘要

长距离纠缠是一种非常宝贵的资源,但是由于光纤中光的指数损失,其分布非常困难。可能的解决方案包括使用量子中继器,基于纠缠交换或量子误差校正。另外,可以利用基于卫星的自由空间光学链接,从而实现更好的损失距离缩放。我们建议将这两种成分,量子中继器和基于卫星的链接组合到一个方案中,该方案允许在全球距离上实现纠缠分布,并具有少数中间的不信任节点。放置在卫星上的纠缠来源将编码在光子中的量子状态发送到绕线量子转移的量子站,并在此执行纠缠交换。该中继器链的性能是根据BB-84加密协议可实现的秘密关键率评估的。我们与其他中继链体系结构进行了比较,并表明我们的计划在几乎每种情况下都很出色,可实现更高的关键率,可靠性和灵活性。最后,我们分析了中期未来实施的可行性,并讨论了示例性的轨道配置。可以设想将基于卫星的链接与地面中继器网络集成,以代表未来的量子互联网的骨干。

Long-distance entanglement is a very precious resource, but its distribution is very difficult due to the exponential losses of light in optical fibres. A possible solution consists in the use of quantum repeaters, based on entanglement swapping or quantum error correction. Alternatively, satellite-based free-space optical links can be exploited, achieving better loss-distance scaling. We propose to combine these two ingredients, quantum repeaters and satellite-based links, into a scheme that allows to achieve entanglement distribution over global distances with a small number of intermediate untrusted nodes. The entanglement sources, placed on satellites, send quantum states encoded in photons towards orbiting quantum repeater stations, where entanglement swapping is performed. The performance of this repeater chain is assessed in terms of the secret key rate achievable by the BB-84 cryptographic protocol. We perform a comparison with other repeater chain architectures and show that our scheme is superior in almost every situation, achieving higher key rates, reliability and flexibility. Finally, we analyse the feasibility of the implementation in the mid-term future and discuss exemplary orbital configurations. The integration of satellite-based links with ground repeater networks can be envisaged to represent the backbone of the future Quantum Internet.

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