Tian Yuhang, Sun Xiaocong, Wang Yajun, Li Qinghui, Tian Long, Zheng Yaohui
Opt Lett. 2022 Feb 1;47(3):533-536. doi: 10.1364/OL.446645.
A squeezed state with higher-order sidebands is a valuable quantum resource for channel multiplexing quantum communication. However, balanced homodyne detection used in nonclassical light detection has a trade-off performance between the detection bandwidth and clearance, in which the verification of a highly squeezing factor faces a challenge. Here, we construct two optical parametric amplifiers with cavity enhancement; one is for the generation of a -10.5 dB squeezed vacuum state, and the other is for all-optical phase-sensitive parametric homodyne detection. Finally, -6.5 dB squeezing at the carrier with 17 pairs of squeezing sidebands (bandwidth of 156 GHz) is directly and simultaneously observed. In particular, for the cavity-enhanced parametric oscillation and detection processes, we analyze the limiting factors of the detectable bandwidth and measurement deviation from the generated value, which indicates that the length difference and propagation loss between two optical parametric amplifiers should be as small as possible to improve the detection performance. The experimental results confirm our theoretical analysis.
具有高阶边带的压缩态是用于信道复用量子通信的宝贵量子资源。然而,非经典光检测中使用的平衡零差检测在检测带宽和净空之间存在权衡性能,其中高度压缩因子的验证面临挑战。在此,我们构建了两个具有腔增强的光学参量放大器;一个用于产生-10.5 dB的压缩真空态,另一个用于全光相位敏感参量零差检测。最后,直接并同时观测到在载波处具有17对压缩边带(带宽为156 GHz)时-6.5 dB的压缩。特别是,对于腔增强参量振荡和检测过程,我们分析了可检测带宽的限制因素以及与生成值的测量偏差,这表明两个光学参量放大器之间的长度差和传播损耗应尽可能小,以提高检测性能。实验结果证实了我们的理论分析。