论文标题
超级轨迹通过实验量子通信增强
Experimental Quantum Communication Enhancement by Superposing Trajectories
论文作者
论文摘要
在量子通信网络中,电线代表了量子系统传输的明确定义的轨迹。尽管如此,轨迹仍可以用作量子控制,以控制不同的嘈杂通信通道的顺序,并且已经证明,即使通过量子通信协议通过明确定义的轨迹失败,这种控制也可以传递信息。该结果促使进一步研究轨迹在增强通信中的叠加的作用,这表明对平行通信通道的量子控制或使用量子控制的操作串联的通道也可以导致通信优势。在这些发现的基础上,我们在这里实验和数字比较了不同的方式,在这些方式中,可以将两个轨迹通过一对嘈杂的通道进行超级置。我们观察到,在量子干涉法的框架内,使用量子控制操作的通道通常会产生最大的优势。我们的结果有助于阐明在实验量子 - 光学场景中这些优势的性质,并展示了扩展量子通信范式的好处,其中交换的信息和信息载体的轨迹都是量子。
In quantum communication networks, wires represent well-defined trajectories along which quantum systems are transmitted. In spite of this, trajectories can be used as a quantum control to govern the order of different noisy communication channels, and such a control has been shown to enable the transmission of information even when quantum communication protocols through well-defined trajectories fail. This result has motivated further investigations on the role of the superposition of trajectories in enhancing communication, which revealed that the use of quantum control of parallel communication channels, or of channels in series with quantum-controlled operations, can also lead to communication advantages. Building upon these findings, here we experimentally and numerically compare different ways in which two trajectories through a pair of noisy channels can be superposed. We observe that, within the framework of quantum interferometry, the use of channels in series with quantum-controlled operations generally yields the largest advantages. Our results contribute to clarify the nature of these advantages in experimental quantum-optical scenarios, and showcase the benefit of an extension of the quantum communication paradigm in which both the information exchanged and the trajectory of the information carriers are quantum.