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Reduction of far off-resonance laser frequency drifts based on the second harmonic of electro-optic modulator detection in the optically pumped magnetometer

机译:基于光学泵浦磁力计的电光调制器检测二次谐振激光频率漂移的遥远偏振激光频率漂移

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摘要

The frequency drifts of the probe laser could be coupled into the calibrated scale factor of the optically pumped magnetometer (OPM) and induce an error of the measurement accuracy. We propose a method to reduce the far off-resonance laser frequency drifts based on the second harmonic of the electro-optic modulator (EOM) detection system in the all-optical K-Rb hybrid pumping magnetometer. Adopting the closed-loop feedback by monitoring the second-harmonic component in real time, the frequency drift of the probe laser has been effectively reduced by about five times to similar to 30 MHz/0.5 h at the detuning of 130 GHz and the cell temperature of 443 K. Besides, this technique has been demonstrated to be helpful for reducing the frequency drifts at different detuning points and temperatures. This method is not only suitable for the development of more compact, high-sensitivity OPMs due to the long-term stability improvement with no extra optical path, but also can be applied to other atomic devices and EOM detection systems for reducing the influence of the laser. (C) 2017 Optical Society of America
机译:探针激光器的频率漂移可以耦合到光学泵浦磁力计(OPM)的校准比例因子中,并诱导测量精度的误差。我们提出了一种基于全光K-RB混合泵泵磁仪中的电光调制器(EOM)检测系统的第二谐波减少远谐振激光频率漂移的方法。通过实时监测二谐波分量,采用闭环反馈,探头激光的频率漂移已经有效地降低了约5倍至类似于30MHz / 0.5小时的损伤,损伤130GHz和细胞温​​度在443 K.此外,已经证明该技术有助于减少不同静脉点和温度的频率漂移。该方法不仅适用于由于长期稳定性改进而没有额外的光路的长期稳定性改进,也可以应用于其他原子装置和EOM检测系统,以减少影响的其他原子装置和EOM检测系统激光。 (c)2017年光学学会

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  • 来源
    《Applied optics》 |2017年第21期|共6页
  • 作者单位

    Beihang Univ Sci &

    Technol Inertial Lab Sch Instrumentat Sci &

    Optoelect Engn Beijing 100191 Peoples R China;

    Beihang Univ Sci &

    Technol Inertial Lab Sch Instrumentat Sci &

    Optoelect Engn Beijing 100191 Peoples R China;

    Beihang Univ Sci &

    Technol Inertial Lab Sch Instrumentat Sci &

    Optoelect Engn Beijing 100191 Peoples R China;

    Beihang Univ Sci &

    Technol Inertial Lab Sch Instrumentat Sci &

    Optoelect Engn Beijing 100191 Peoples R China;

    Beihang Univ Sci &

    Technol Inertial Lab Sch Instrumentat Sci &

    Optoelect Engn Beijing 100191 Peoples R China;

    Beihang Univ Sci &

    Technol Inertial Lab Sch Instrumentat Sci &

    Optoelect Engn Beijing 100191 Peoples R China;

    Beihang Univ Sci &

    Technol Inertial Lab Sch Instrumentat Sci &

    Optoelect Engn Beijing 100191 Peoples R China;

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  • 正文语种 eng
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