论文标题
量子微波光子学的原则证明证明
A proof-of-principle demonstration of quantum microwave photonics
论文作者
论文摘要
随着微波光子学的快速发展已扩展到众多商业重要性的应用,消除了新兴的瓶颈变得至关重要。例如,作为微波光子学的主要分支,无线电纤维技术提供了高带宽,低损失和长距离传播能力,从而促进了从电信到无线网络的广泛应用。以超短脉冲为光载体,巨大的容量将进一步赋予。然而,超短脉冲的宽带宽度导致高频RF信号与纤维分散体的严重脆弱性。用时间能量纠缠的双霍氏源作为光载体,并与单光子检测技术结合使用,提出了一种量子微波光子方法,并通过实验进行了证明。结果表明,它不仅实现了前所未有的非局部RF信号调制,对与超短脉冲载体相关的分散体有很强的抗性,而且提供了一种替代机制,可以有效地将RF信号从分散体中蒸发出来。此外,非局部调制和蒸馏的RF信号的无虚拟动态范围已显着改善。通过低临时射频单光子检测,超高检测和高速处理优势赋予了量子微波光子学方法,从而为现代通信和网络开辟了新的可能性。
With the rapid development of microwave photonics, which has expanded to numerous applications of commercial importance, eliminating the emerging bottlenecks becomes of vital importance. For example, as the main branch of microwave photonics, radio-over-fiber technology provides high bandwidth, low-loss, and long-distance propagation capability, facilitating wide applications ranging from telecommunication to wireless networks. With ultrashort pulses as the optical carrier, huge capacity is further endowed. However, the wide bandwidth of ultrashort pulses results in the severe vulnerability of high-frequency RF signals to fiber dispersion. With a time-energy entangled biphoton source as the optical carrier and combined with the single-photon detection technique, a quantum microwave photonics method is proposed and demonstrated experimentally. The results show that it not only realizes unprecedented nonlocal RF signal modulation with strong resistance to the dispersion associated with ultrashort pulse carriers but provides an alternative mechanism to effectively distill the RF signal out from the dispersion. Furthermore, the spurious-free dynamic range of both the nonlocally modulated and distilled RF signals has been significantly improved. With the ultra-weak detection and high-speed processing advantages endowed by the low-timing-jitter single-photon detection, the quantum microwave photonics method opens up new possibilities in modern communication and networks.