Ramsey-Borde Atom Interferometry with a Thermal Strontium Beam for a Compact Optical Clock

Oliver Fartmann, Martin Jutisz, Amir Mahdian, Vladimir Schkolnik, Ingmari C. Tietje, Conrad Zimmermann, Markus Krutzik
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Abstract

Compact optical atomic clocks have become increasingly important in field applications and clock networks. Systems based on Ramsey-Borde interferometry (RBI) with a thermal atomic beam seem promising to fill a technology gap in optical atomic clocks, as they offer higher stability than optical vapour cell clocks while being less complex than cold atomic clocks. Here, we demonstrate RBI with strontium atoms, utilizing the narrow 1S0 -> 3P1 intercombination line at 689 nm, yielding a 60 kHz broad spectral feature. The obtained Ramsey fringes for varying laser power are analyzed and compared with a numerical model. The 1S0 -> 1P1 transition at 461 nm is used for fluorescence detection. Analyzing the slope of the RBI signal and the fluorescence detection noise yields an estimated short-term stability of 4x10-14 / sqrt{tau}. We present our experimental setup in detail, including the atomic beam source, frequency-modulation spectroscopy to lock the 461 nm laser, laser power stabilization and the high-finesse cavity pre-stabilization of the 689 nm laser. Our system serves as a ground testbed for future clock systems in mobile and space applications.
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利用热锶光束进行拉姆齐-博德原子干涉测量法,制造紧凑型光学时钟
紧凑型光学原子钟在现场应用和时钟网络中变得越来越重要。基于热原子束的拉姆齐-波德干涉测量(RBI)系统似乎有望填补光学原子钟的技术空白,因为它们比光学蒸汽电池钟具有更高的稳定性,同时比冷原子钟的复杂性更低。在这里,我们利用波长为 689 nm 的窄 1S0 -> 3P1 相互结合线,演示了锶原子的拉姆齐流变,从而产生了 60 kHz 的宽光谱特征。我们分析了在不同激光功率下获得的拉姆齐条纹,并将其与数值模型进行了比较。通过分析 RBI 信号斜率和荧光检测噪声,估计短期稳定性为 4x10-14 / sqrt{tau}。我们详细介绍了我们的实验装置,包括原子束源、锁定 461 nm 激光的调频光谱、激光功率稳定和 689 nm 激光的高精细腔预稳定。我们的系统是未来移动和空间应用中时钟系统的地面测试平台。
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