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Impact analysis of cavity length on transfer cavity frequency locking system for atomic inertial measurement device

机译:原子惯性测量装置转移腔频率锁定系统的冲击分析

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In this work, an efficient method for frequency stabilization of a highly off-resonant laser in a spin-exchange relaxation-free atomic inertial sensor is proposed. This was accomplished via the use of an optical resonator that transferred the stability of an atomic energy level to the laser frequency. The pump laser frequency was stabilized via saturation absorption spectroscopy and was used as a reference to lock the large-detuned probe laser with a double transmission Fabry–Pérot (FP) cavity. The frequency stability and bandwidth of the entire transfer cavity frequency locking system were investigated, and the results were used to elucidate the effect of cavity length on stability. The frequency stability of the system approached 1.66 × 10 ?11 when the FP cavity length was 30 mm. This method can be applied to a variety of ultrasensitive atomic physics experiments, such as for precision spectroscopy and laser cooling.
机译:在这项工作中,提出了一种有效的用于自旋交换弛豫原子惯性传感器中高度谐振激光的有效方法。这是通过使用将原子能水平的稳定性转移到激光频率的光学谐振器来完成的。泵激光频率通过饱和吸收光谱稳定,用作锁定大型损伤探针激光器的引用,通过双变速器法布里 - Pérot(FP)腔。研究了整个转移腔锁定系统的频率稳定性和带宽,并使用结果来阐明腔长对稳定性的影响。当FP腔长30毫米时,系统的频率稳定性接近1.66×10?11。该方法可以应用于各种超敏原子物理实验,例如用于精密光谱和激光冷却。

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