Wang Ze, Li Kangkang, Wang Yue, Zhou Xin, Cheng Yinke, Jing Boxuan, Sun Fengxiao, Li Jincheng, Li Zhilin, Wu Bingyan, Gong Qihuang, He Qiongyi, Li Bei-Bei, Yang Qi-Fan
State Key Laboratory for Artificial Microstructure and Mesoscopic Physics and Frontiers Science Center for Nano-optoelectronics, School of Physics, Peking University, 100871, Beijing, China.
Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Sciences, 100190, Beijing, China.
Light Sci Appl. 2025 Apr 16;14(1):164. doi: 10.1038/s41377-025-01812-2.
An optical frequency comb comprises a cluster of equally spaced, phase-locked spectral lines. Replacing these classical components with correlated quantum light gives rise to cluster quantum frequency combs, providing abundant quantum resources for measurement-based quantum computation, and multi-user quantum networks. We propose and generate cluster quantum microcombs within an on-chip optical microresonator driven by multi-frequency lasers. Through resonantly enhanced four-wave mixing processes, continuous-variable cluster states with 60 qumodes are deterministically created. The graph structures can be programmed into one- and two-dimensional lattices by adjusting the configurations of the pump lines, which are confirmed inseparable based on the measured covariance matrices. Our work demonstrates the largest-scale cluster states with unprecedented raw squeezing levels from a photonic chip, offering a compact and scalable platform for computational and communicational tasks with quantum advantages.
光学频率梳由一组等间距、锁相的谱线组成。用关联量子光取代这些经典组件会产生簇状量子频率梳,为基于测量的量子计算和多用户量子网络提供丰富的量子资源。我们提出并在由多频激光器驱动的片上光学微谐振器内生成簇状量子微梳。通过共振增强的四波混频过程,确定性地创建了具有60个量子模式的连续变量簇态。通过调整泵浦线的配置,可以将图结构编程为一维和二维晶格,基于测量的协方差矩阵证实这些晶格是不可分离的。我们的工作展示了来自光子芯片的具有前所未有的原始压缩水平的最大规模簇态,为具有量子优势的计算和通信任务提供了一个紧凑且可扩展的平台。