论文标题
用于微波炉纠缠的信号的共面天线设计在露天传播
Coplanar Antenna Design for Microwave Entangled Signals Propagating in Open Air
论文作者
论文摘要
露天微波量子通信和计量协议必须能够从创建的低温恒温器中将量子资源传输到由热噪声主导的环境。实际上,携带此类量子资源的状态是在以温度为特征的低温恒温器中生成的,该温度为$ t_ \ text {in} \ simeq 50 $ 〜mk和内在的阻抗$ z_ \ text {in} = 50 \,ω$。然后,需要一种类似天线的装置来将它们以最小的损失转移到露天中,其特征是$ z_ \ text {out} = 377 \,ω$和温度$ t_ \ text {out} \ simeq 300 $ 〜k。该设备可以在低温恒温器和露天之间实现平稳的阻抗匹配。在这里,我们研究了两种模式挤压热状态的传播,开发了一种技术来设计共面天线以保持纠缠的最佳形状。基于数值优化过程,我们找到了阻抗的最佳形状,并提出了一个功能性ANSATZ来定性地描述这种形状。此外,这项研究表明,天线的反射率对这种形状非常敏感,因此很小的变化极大地影响了随之而来的纠缠,这在使用商业天线的先前实验中可能是一个限制。这项工作与微波量子传感和量子计量学领域有关,并在量子雷达的开发以及任何露天微波量子通信方案方面具有特殊应用。
Open-air microwave quantum communication and metrology protocols must be able to transfer quantum resources from a cryostat, where they are created, to an environment dominated by thermal noise. Indeed, the states carrying such quantum resources are generated in a cryostat characterized by a temperature $T_\text{in} \simeq 50 $~mK and an intrinsic impedance $Z_\text{in} = 50 \, Ω$. Then, an antenna-like device is required to transfer them with minimal losses into open air, characterized by an intrinsic impedance of $Z_\text{out} = 377 \, Ω$ and a temperature $T_\text{out} \simeq 300$~K. This device accomplishes a smooth impedance matching between the cryostat and the open air. Here, we study the transmission of two-mode squeezed thermal states, developing a technique to design the optimal shape of a coplanar antenna to preserve the entanglement. Based on a numerical optimization procedure, we find the optimal shape of the impedance, and we propose a functional ansatz to qualitatively describe this shape. Additionally, this study reveals that the reflectivity of the antenna is very sensitive to this shape, so that small changes dramatically affect the outcoming entanglement, which could have been a limitation in previous experiments employing commercial antennae. This work is relevant in the fields of microwave quantum sensing and quantum metrology with special application to the development of the quantum radar, as well as any open-air microwave quantum communication protocol.