Gozzelino Michele, Micalizio Salvatore, Calosso Claudio Eligio, Godone Aldo, Lin Haixiao, Levi Filippo
IEEE Trans Ultrason Ferroelectr Freq Control. 2021 Mar;68(3):872-879. doi: 10.1109/TUFFC.2020.3011604. Epub 2021 Feb 25.
Vapor-cell devices based on microwave interrogation provide a stable frequency reference with a compact and robust setup. Further miniaturization must focus on optimizing the physics package, containing the microwave cavity and atomic reservoir. In this article, we present a compact cavity-cell assembly based on a dielectric-loaded cylindrical resonator. The loaded cavity resonating at 6.83 GHz has an external volume of only 35 cm and accommodates a vapor cell with 0.9-cm inner volume. The proposed design aims at strongly reducing the core of the atomic clock, maintaining, at the same time, high-performing short-term stability ( σ(τ) ≤ 5×10 τ standard Allan deviation). The proposed structure is characterized in terms of microwave field uniformity and atom-field coupling with the aid of finite-element calculations. The thermal sensitivity is also analyzed and experimentally characterized. We present preliminary spectroscopy results by integrating the compact cavity within a rubidium clock setup based on the pulsed optically pumping technique. The obtained clock signals are compatible with the targeted performances. The loaded-cavity approach is, thus, a viable design option for miniaturized microwave clocks.
基于微波询问的汽相池装置通过紧凑且坚固的设置提供稳定的频率参考。进一步的小型化必须专注于优化包含微波腔和原子储存器的物理封装。在本文中,我们展示了一种基于介质加载圆柱谐振器的紧凑腔池组件。在6.83 GHz谐振的加载腔外部体积仅为35立方厘米,可容纳内部体积为0.9立方厘米的汽相池。所提出的设计旨在大幅减小原子钟的核心部分,同时保持高性能的短期稳定性(σ(τ) ≤ 5×10 τ标准艾伦偏差)。借助有限元计算对所提出的结构在微波场均匀性和原子 - 场耦合方面进行了表征。还分析了热灵敏度并进行了实验表征。我们通过将紧凑腔集成到基于脉冲光泵浦技术的铷钟设置中展示了初步的光谱学结果。获得的时钟信号与目标性能兼容。因此,加载腔方法是小型化微波时钟的一种可行设计选项。