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Efficient and stable coupling to nanophotonic waveguides and resonators in stringent environments.

S Pautrel, F Malabat, L Waquier

    Optics Express
    |November 14, 2024
    PubMed
    Summary

    We developed novel conical optical fiber techniques for efficient light coupling to nanophotonic devices in challenging environments. This method achieves over 90% coupling efficiency, crucial for quantum optics and sensing applications.

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    Area of Science:

    • Nanophotonics
    • Quantum Optics
    • Optical Engineering

    Background:

    • Coupling light to nanophotonic structures is essential for quantum optics and sensing.
    • Constrained environments, such as those found in cryostats, pose significant challenges for efficient light coupling.
    • Existing methods often struggle with stability and performance in demanding conditions.

    Purpose of the Study:

    • To explore new methods for coupling light to nanophotonic structures in constrained environments using conical optical fibers.
    • To demonstrate efficient and stable light coupling to on-chip nanophotonic devices.
    • To achieve high coupling efficiencies for applications in quantum optics and sensing.

    Main Methods:

    • Utilized single-sided conical fiber tapers for initial coupling to on-chip nanophotonic bus waveguides immersed in liquid.
    • Employed a face-to-face configuration of two conical fibers to couple light directly into whispering gallery disk resonators.
    • Operated and tested the system within a vibrating pulse tube cryostat at low temperatures.

    Main Results:

    • Demonstrated efficient light coupling to a nanophotonic bus waveguide with a single-sided conical fiber taper.
    • Achieved highly efficient coupling, exceeding 90%, using two conical fibers joined face to face for whispering gallery resonators.
    • Confirmed the stability of the two-conical-fiber coupling method within a vibrating cryostat.
    • Validated performance in the telecom band and near-infrared (around 900 nm).

    Conclusions:

    • Conical optical fiber techniques offer a robust solution for light coupling in challenging and constrained environments.
    • The developed methods significantly enhance coupling performance, meeting requirements for advanced quantum optics and sensing experiments.
    • These advancements address previous signal-to-noise ratio limitations in stringent experimental settings.