论文标题
量子键分布,通过量子点在点播产生的纠缠光子
Quantum key distribution with entangled photons generated on-demand by a quantum dot
论文作者
论文摘要
量子密钥分布---依靠量子机械资源的随机秘密密钥交换是安全量子网络的核心特征。基于纠缠的协议可以通过量子中继器提供额外的安全性和规模,但是在光子源上设定的严格要求已使他们的使用情况迄今已使用。在这种情况下,基于半导体的量子发射器是一种有前途的解决方案,可确保按需以记录的多光子发射发射的近乎统一的纠缠光子,后者的特征与一些最佳的窃听攻击相反。在这里,我们首先采用量子点在实验上证明了一个经过改进的Ekert量子键分布协议,具有两个量子通道方法:两种量子通道方法:250米长的单模式纤维和自由空间,连接罗马萨皮恩扎大学校园内的两座建筑物。我们的现场研究强调,量子点纠缠的光子来源已准备好超越实验室实验,从而为现实生活中的量子通信开辟了道路。
Quantum key distribution---exchanging a random secret key relying on a quantum mechanical resource---is the core feature of secure quantum networks. Entanglement-based protocols offer additional layers of security and scale favorably with quantum repeaters, but the stringent requirements set on the photon source have made their use situational so far. Semiconductor-based quantum emitters are a promising solution in this scenario, ensuring on-demand generation of near-unity-fidelity entangled photons with record-low multi-photon emission, the latter feature countering some of the best eavesdropping attacks. Here we first employ a quantum dot to experimentally demonstrate a modified Ekert quantum key distribution protocol with two quantum channel approaches: both a 250 meter long single mode fiber and in free-space, connecting two buildings within the campus of Sapienza University in Rome. Our field study highlights that quantum-dot entangled-photon sources are ready to go beyond laboratory experiments, thus opening the way to real-life quantum communication.