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Related Experiment Video

Updated: Nov 21, 2025

Stimulated Stokes and Antistokes Raman Scattering in Microspherical Whispering Gallery Mode Resonators
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Laser stabilization to a cryogenic fiber ring resonator.

Benjamin Merkel, Daniel Repp, Andreas Reiserer

    Optics Letters
    |January 15, 2021
    PubMed
    Summary

    This study presents a fiber-based ring resonator operating at cryogenic temperatures, achieving a first-order temperature-insensitive point. This laser frequency stabilization method offers reduced sensitivity to environmental factors for precision experiments.

    Area of Science:

    • Physics
    • Optical Engineering
    • Materials Science

    Background:

    • Laser frequency stability is crucial for precision measurements.
    • Thermal noise limits current frequency references, necessitating cryogenic operation.
    • Fiber-based ring resonators are explored for enhanced stability.

    Purpose of the Study:

    • Investigate a fiber-based ring resonator for cryogenic operation.
    • Determine its temperature-insensitive point and sensitivity to environmental factors.
    • Assess its potential for future precision experiments.

    Main Methods:

    • Fabrication and characterization of a fiber-based ring resonator.
    • Operation at cryogenic temperatures (around 3.55 K).
    • Measurement of sensitivity to temperature, vibrations, and pressure.

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    Last Updated: Nov 21, 2025

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    Main Results:

    • Achieved a first-order temperature-insensitive point at 3.55 K.
    • Demonstrated low sensitivity to vibrations (<5e-11 m⁻¹s²).
    • Quantified low sensitivity to temperature (-22(1)e-9 K⁻²) and pressure (4.2(2)e-11 mbar⁻²).

    Conclusions:

    • The fiber-based ring resonator shows promise for ultra-stable laser frequency references.
    • Cryogenic operation significantly enhances stability by reducing thermal noise.
    • The system's low environmental sensitivity makes it suitable for advanced precision experiments.