论文标题
可扩展光子量子系统的统计基准测试
Statistical Benchmarking of Scalable Photonic Quantum Systems
论文作者
论文摘要
靶向实现可扩展光子量子技术,许多光子的产生,它们在大型光学网络中的传播以及随后对复杂量子相关性的检测和分析对于理解宏观量子系统至关重要。在这项实验贡献中,我们探讨了所有提到的成分的联合操作。我们基于我们的时光框架框架,其中包括多光子状态和大型多路复用网络的高性能来源,以及具有高光子数分辨率的独特检测器,很容易用于分发量子光和测量复杂的量子相关性。使用一种使用灵活的时间箱而不是静态垃圾箱的自适应方法,我们成功地验证了许多在许多模式下分布的光子的高阶非分类相关性。通过利用系统的对称性并使用强大的分析工具,我们可以分析相关性,这些相关性是通过经典手段无法访问的。特别是,我们以十个光子的顺序生产,并以64个模式分配它们。通过相关功能验证了非古老性,最多达20个标准偏差的统计意义和统计意义。
Targeting at the realization of scalable photonic quantum technologies, the generation of many photons, their propagation in large optical networks, and a subsequent detection and analysis of sophisticated quantum correlations are essential for the understanding of macroscopic quantum systems. In this experimental contribution, we explore the joint operation of all mentioned ingredients. We benchmark our time-multiplexing framework that includes a high-performance source of multiphoton states and a large multiplexing network, together with unique detectors with high photon-number resolution, readily available for distributing quantum light and measuring complex quantum correlations. Using an adaptive approach that employs flexible time bins, rather than static ones, we successfully verify high-order nonclassical correlations of many photons distributed over many modes. By exploiting the symmetry of our system and using powerful analysis tools, we can analyze correlations that would be inaccessible by classical means otherwise. In particular, we produce on the order of ten photons and distribute them over 64 modes. Nonclassicality is verified with correlation functions up to the 128th order and statistical significances of up to 20 standard deviations.