论文标题
光学单层激光系统用于原子干涉测量法
Performance of an optical single-sideband laser system for atom interferometry
论文作者
论文摘要
本文报告了基于智商调节器和rubidium Atom干涉测量实验的第二次谐波生成的最近开发的光学单层(OSSB)激光系统的详细性能表征。测量的性能用于评估该OSSB激光系统的噪声贡献,以驱动$^{87} $ rb的刺激拉曼过渡,以进行重力加速的精确测量。激光系统抑制了不需要的边带组件,但是在使用这种OSSB激光系统进行频率轰动时,需要应用额外的相移补偿。对于当前实验,OSSB激光系统的总相噪声贡献为72 MRAD,单个原子间构图序列的询问时间为$ t = 120 $ ms,相对的相对精度为32 n $ g $。在侧带和载体组件之间的相对强度波动以及微波源的相位噪声之间发现了主要的噪声源。
This paper reports on a detailed performance characterization of a recently developed optical single-sideband (OSSB) laser system based on an IQ modulator and second-harmonic generation for rubidium atom interferometry experiments. The measured performance is used to evaluate the noise contributions of this OSSB laser system when it is applied to drive stimulated Raman transitions in $^{87}$Rb for precision measurements of gravitational acceleration. The laser system suppresses unwanted sideband components, but additional phase shift compensation needs to be applied when performing frequency chirps with such an OSSB laser system. The total phase noise contribution of the OSSB laser system in the current experiment is 72 mrad for a single atom-interferometry sequence with interrogation times of $T=120$ ms, which corresponds to a relative precision of 32 n$g$ per shot. The dominant noise sources are found in the relative intensity fluctuations between sideband and carrier components and the phase noise of the microwave source.