Frequency-stabilized improvement of saturated absorption spectroscopy based on laser linewidth-control strategy

Author:

Zeng Chun,Zhao Qilai,Yang Changsheng12,Sun Yuxin,Li Jialong,Wang Changhe,Zheng Junjie,Yang Zhongmin,Xu Shanhui12

Affiliation:

1. Guangdong Engineering Technology Research and Development Center of High-performance Fiber Laser Techniques and Equipments

2. Hengqin Firay Sci-Tech Company Ltd.

Abstract

Single-frequency fiber lasers (SFFLs), 1083 nm, have been extensively applied in 4He optical pumping magnetometers (OPMs) for magnetic field detection. However, the sensitivity and accuracy of OPMs are constrained by the frequency stability of SFFLs. Focusing on this concern, the frequency-stabilized performance of the 1083 nm SFFLs is successfully improved by externally tailoring the laser linewidth to match the spectral width of the error signal in saturated absorption spectroscopy. Thereinto, a high-intensity error signal of saturated absorption is generated as a large number of 4He atoms with a wide range of velocities interacting with the 1083 nm laser. Consequently, the root mean square value of the fluctuating frequency after locking is effectively decreased from 24.6 to 13.6 kHz, which achieves a performance improvement of 44.7%. Such a strategy can provide a technical underpinning for effectuating an absolute frequency stabilization with higher precision based on atomic and molecular absorption spectroscopy techniques.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Key-Area Research and Development Program of Guangdong Province

Fundamental Research Funds for the Central Universities

China Postdoctoral Science Foundation

Guangdong Basic and Applied Basic Research Foundation

Young Talent Support Project of Guangzhou Association for Science and Technology

Guangzhou Basic and Applied Basic Research Foundation

Open Project Program of Shanxi Key Laboratory of Advanced Semiconductor Optoelectronic Devices and Integrated Systems

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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