P. Burdekin, S. Grandi, Rielly Newbold, R. Hoggarth, K. D. Major, A. Clark
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引用次数: 4
摘要
我们提出并演示了铷吸收的泵浦探测光谱,揭示了$^{5}$ S $_{1/2} \leftrightarrow$$^{5}$ P $_{3/2}$ (D2)跃迁的亚多普勒超精细结构。反向传播泵浦和探针激光器的频率可独立调谐,探针工作在单光子水平。扫描激光频率时测量的二维光谱显示出荧光、多普勒加宽吸收衰减和亚多普勒特征。泵浦激光器和探测激光器之间的失谐可以补偿室温蒸汽中所有原子速度的多普勒频移,这意味着我们可以观察到光束中所有原子的亚多普勒特征。我们详细介绍了该系统的理论模型,其中包括荧光、饱和效应和光泵浦,并将其与实测光谱进行了比较,发现平均绝对百分比误差为4.17%。在未来,该技术可以辅助激光的频率稳定,单光子级探针可以被单光子源取代。
Single-Photon-Level Sub-Doppler Pump-Probe Spectroscopy of Rubidium
We propose and demonstrate pump-probe spectroscopy of rubidium absorption which reveals the sub-Doppler hyperfine structure of the $^{5}$S$_{1/2} \leftrightarrow$ $^{5}$P$_{3/2}$ (D2) transitions. The counter propagating pump and probe lasers are independently tunable in frequency, with the probe operating at the single-photon-level. The two-dimensional spectrum measured as the laser frequencies are scanned shows fluorescence, Doppler-broadened absorption dips and sub-Doppler features. The detuning between the pump and probe lasers allows compensation of the Doppler shift for all atomic velocities in the room temperature vapor, meaning we observe sub-Doppler features for all atoms in the beam. We detail a theoretical model of the system which incorporates fluorescence, saturation effects and optical pumping and compare this with the measured spectrum, finding a mean absolute percentage error of 4.17\%. In the future this technique could assist in frequency stabilization of lasers, and the single-photon-level probe could be replaced by a single photon source.