Laser-frequency stabilization with differential single-beam saturated absorption spectroscopy of 4He atoms.

Bowen Wang, Xiang Peng, Haidong Wang, Yang Liu, Hong Guo
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Abstract

Differential single-beam saturated-absorption spectroscopy (DSSAS) is proposed to stabilize lasing frequency and suppress Doppler-broadened background and common-mode optical noise. The spectral first-derivative demodulated signal of metastable He4 atoms is used as an error signal to stabilize a fiber laser around 1083 nm. Experimental results show that, compared with existing non-DSSAS frequency stabilization, DSSAS stabilization produces better stability and lower fluctuations, especially for frequency-noise-corrupted lasers. In DSSAS stabilization, for data acquired over 7000 s, the root mean square frequency fluctuation of the fiber laser is 16.4 kHz, and the frequency stability described by the modified Allan deviation is 4.1 × 10-12 at 100 s. Even for a defective laser with poor frequency stability, the proposed scheme demonstrates experimentally high capability of noise suppression and reduces the frequency fluctuations by two orders of magnitude. Given its simplicity and compact design, frequency stabilization by DSSAS is promising for quantum-sensor applications, such as atomic magnetometers, atomic gyroscopes, and atomic clocks.
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4He原子的差分单束饱和吸收光谱激光稳频。
差分单光束饱和吸收光谱(DSSAS)可以稳定激光频率,抑制多普勒加宽背景和共模光学噪声。利用亚稳He4原子的光谱一阶导数解调信号作为误差信号,使光纤激光器稳定在1083 nm左右。实验结果表明,与现有的非DSSAS稳频相比,DSSAS稳频具有更好的稳定性和更小的波动,特别是对于频率噪声损坏的激光器。在DSSAS稳定化中,对于超过7000 s采集的数据,光纤激光器的频率均方根波动为16.4 kHz,在100 s时,修正Allan偏差描述的频率稳定性为4.1 × 10-12。即使对于频率稳定性差的缺陷激光器,该方案在实验中也证明了较高的噪声抑制能力,并将频率波动降低了两个数量级。由于其简单和紧凑的设计,DSSAS的频率稳定在量子传感器应用中很有前途,如原子磁力计、原子陀螺仪和原子钟。
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