原子钟
微波腔
超冷原子
微波食品加热
材料科学
光电子学
原子光学
激光器
腔量子电动力学
塞曼效应
Atom(片上系统)
光学腔
原子物理学
光学
物理
磁场
嵌入式系统
开放量子系统
量子
量子力学
计算机科学
作者
Etienne Batori,Alan Bregazzi,Ben Lewis,Paul F. Griffin,Erling Riis,G. Mileti,C. Affolderbach
摘要
We present an additive-manufactured microwave cavity for a Ramsey-type, double resonance, compact cold-atom clock. Atoms can be laser cooled inside the cavity using a grating magneto-optic trap (GMOT) with the cavity providing an excellent TE011-like mode while maintaining sufficient optical access for atomic detection. The cavity features a low Q-factor of 360 which conveniently reduces the cavity-pulling of the future clock. Despite the potential porosity of the additive-manufacturing process, we demonstrate that the cavity is well-suited for vacuum. A preliminary clock setup using cold atoms allows for measuring the Zeeman spectrum and Rabi oscillations in the cavity which enables us to infer excellent field uniformity and homogeneity respectively, across the volume accessed by the cold atoms. Ramsey spectroscopy is demonstrated, indicating the cavity is suitable for clock applications. Finally, we discuss the limitations of the future clock.
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