论文标题

微波量子照明通过腔磁化

Microwave Quantum Illumination via Cavity Magnonics

论文作者

Cai, Qizhi, Liao, Jinkun, Shen, Bohai, Guo, Guangcan, Zhou, Qiang

论文摘要

量子照明(QI)是一种用于目标检测的量子传感协议,它使用纠缠的信号式光子对,以提高浸入热噪声环境中的低反射对象的检测效率。特别是,由于自然存在的背景辐射,向潜在靶标发射的光子更适当地位于微波区域。在这里,我们提出了一个基于微波Qi的空腔镁化的混合量子源,其中桥接光学和微波模式的介质是镁,即旋转波的量子。在实验可访问的参数中,可以生成重要的微波光量子量子资源,从而导致比差异量量子相比,检测误差概率较低,误差概率较低,并且具有相等传输能量的任何经典微波雷达和任何经典的微波雷达。

Quantum illumination (QI) is a quantum sensing protocol mainly for target detection which uses entangled signal-idler photon pairs to enhance the detection efficiency of low-reflectivity objects immersed in thermal noisy environments. Especially, due to the naturally occurring background radiation, the photon emitted toward potential targets more appropriately lies in the microwave region. Here, we propose a hybrid quantum source based on cavity magnonics for microwave QI, where the medium that bridges the optical and the microwave modes is magnon, the quanta of spin wave. Within experimentally accessible parameters, significant microwave-optical quantum resources of interest can be generated, leading to orders of magnitude lower detecting error probability compared with the electro-optomechanical prototype quantum radar and any classical microwave radar with equal transmitted energy.

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