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Construction and Characterization of External Cavity Diode Lasers for Atomic Physics
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Laser with 10-13 short-term instability for compact optically pumped cesium beam atomic clock.

Haosen Shang, Tongyun Zhang, Jianxiang Miao

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    |April 1, 2020
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    We developed a highly stable laser using modulation transfer spectroscopy, enabling a compact cesium atomic clock with record-breaking performance. This advancement significantly improves timekeeping and metrology applications.

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    Area of Science:

    • Atomic, Molecular, and Optical Physics
    • Quantum Metrology and Standards

    Background:

    • High-performance atomic clocks are crucial for precise timekeeping and metrology.
    • Compact atomic clocks are desirable for portable and diverse applications.
    • Laser stabilization techniques are key to improving atomic clock accuracy.

    Purpose of the Study:

    • To develop a high-stability laser for a compact optically pumped cesium beam atomic clock.
    • To evaluate the frequency instability of the stabilized laser.
    • To assess the performance of the cesium atomic clock against a Hydrogen maser.

    Main Methods:

    • Modulation transfer spectroscopy was used to stabilize an 852 nm laser referenced on thermal cesium atoms.
    • Optical heterodyne methods with two identical lasers evaluated laser frequency instability.
    • Allan deviation was measured by comparing the cesium clock with a Hydrogen maser.

    Main Results:

    • The stabilized laser exhibited a frequency instability of 2.6×10-13 at 5 s averaging time.
    • The cesium beam atomic clock achieved an Allan deviation of 2×10-12/τ, reaching 1×10-14 within half a day.
    • The clock's performance surpasses previously reported compact cesium beam atomic clocks at long averaging times.

    Conclusions:

    • A high-stability laser and a high-performance compact cesium beam atomic clock were successfully realized.
    • The developed atomic clock offers superior Allan deviation compared to existing compact designs.
    • The laser system holds potential as a compact optical frequency standard, advancing metrology and timekeeping.