Du Cheng-Zhang, Wang Da-Wei, Zhao Cheng-Song, Yang Junya, Zhou Ling
Opt Express. 2023 Aug 14;31(17):28308-28319. doi: 10.1364/OE.496693.
Quantum illumination is a quantum optical sensing technique, which employs an entangled source to detect low-reflectivity object immersed in a bright thermal background. Hybrid cavity-optomagnonics system promises to work as quantum illumination because a yttrium iron garnet (YIG) sphere can couple to microwave field and optical field. In this paper, we propose a scheme to enhance the entanglement between the output fields of the microwave and optical cavities by considering the intrinsic Kerr nonlinearity of the YIG. We investigate the difference between intrinsic Kerr nonlinearity and optomagnonical parametric-type coupling on improving entanglement. Our result show that the large value optomagnonical parametric-type coupling does not mean the large entanglement, nevertheless, the large value of Kerr nonlinearity does monotonously improve the entanglement for our group of parameters. Consequently, under feasible parameters of current experiment, the signal-to-noise ratio and probability of detection error can be improved after considering the magnon Kerr nonlinearity.
量子照明是一种量子光学传感技术,它利用纠缠源来检测浸没在明亮热背景中的低反射率物体。混合腔光磁子系统有望作为量子照明工作,因为钇铁石榴石(YIG)球体可以耦合到微波场和光场。在本文中,我们提出了一种通过考虑YIG的固有克尔非线性来增强微波腔和光腔输出场之间纠缠的方案。我们研究了固有克尔非线性和光磁子参量型耦合在改善纠缠方面的差异。我们的结果表明,大值的光磁子参量型耦合并不意味着大的纠缠,然而,对于我们的参数组,大值的克尔非线性确实会单调地改善纠缠。因此,在当前实验的可行参数下,考虑磁子克尔非线性后可以提高信噪比和检测误差概率。