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中国物理学会期刊

基于平行板谐振器的量子微波电场测量技术

CSTR: 32037.14.aps.72.20221582

Quantum microwave electric field measurement technology based on enhancement electric filed resonator

CSTR: 32037.14.aps.72.20221582
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  • 基于Rydberg原子的量子微波测量技术具有自校准、可溯源、高灵敏度的显著优点, 针对如何提高量子微波测量灵敏度的问题, 本文从经典电磁理论出发, 提出一种终端短路的1/4波长平行板传输线谐振器电场局域增强结构. 运用场路结合的分析方法以及等效电路方法, 求解平行板传输线谐振器结构端口的反射系数为0.91; 利用场的分析方法推导出端口电场强度随时间变化的解析表达式, 进行时域分析, 绘制了平行板传输线谐振器端口的电场强度瞬态响应曲线, 得出平行板传输线谐振器建立稳态的时间为10 ns. 研究表明, 随着平行板间距的减小, 电场强度增强倍数迅速升高, 功率密度压缩能力大幅提升. 利用|69D5/2 \rangle 实验验证了该结构在2.1 GHz可实现25 dB的电场强度增强. 本文的研究工作有望在原子测量能力基础上进一步提高测量灵敏度, 推动量子微波测量技术的实用化发展.

     

    Rydberg atoms based quantum microwave measurement technology has significant advantages such as self-calibration, traceability, high sensitivity and stable uniformity of measurement. In this work, from the dimension of traditional electromagnetic theory, an electric field local enhancement technique for quantum microwave measurements is developed to improve the sensitivity of quantum microwave receiver. The theoretical basis of this method comes from the different mechanisms of realization of microwave reception in quantum microwave receivers and classical receiver. Classic receivers use antennas to collect microwave energy in space to signal reception; quantum microwave receivers measure the strength of the electric field in the path of a laser beam in an atomic gas chamber (the beam is about 100 µm in diameter) to realize the signal reception. Therefore, the sensitivity of quantum microwave receiver can be improved by increasing the electric field strength in the path of laser beam. The critical physical mechanism is the multi-beam interference at the open end and the short-circuited end of the structure. The results show that with the decrease of gap height of parallel plates, the enhancement factor of electric field strength increases rapidly and the power density compression capability is greatly improved. The |69D5/2\rangle experiments verify that the structure can achieve a 25 dB electric field enhancement at 2.1 GHz. This research is expected to be helpful in improving the sensitivity of measurement based on atomic measurement capabilities and in promoting the practical development of quantum microwave measurement technology.

     

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