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Writing Bragg Gratings in Multicore Fibers
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Fiber Bragg grating laser sensor with direct radio-frequency readout.

P Malara, C E Campanella, A Giorgini

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    A novel fiber Bragg grating (FBG)-coupled ring laser sensor integrates source, head, and readout. Its beat note frequency tracks FBG shifts, offering a cost-effective, compact sensing solution.

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    Area of Science:

    • Photonics and Optical Sensing
    • Fiber Optic Sensors
    • Laser Technology

    Background:

    • Traditional fiber optic sensors often require separate components for interrogation, sensing, and readout, increasing complexity and cost.
    • Existing thermo-mechanical fiber sensors offer good performance but can be bulky and expensive.

    Purpose of the Study:

    • To demonstrate a novel fiber Bragg grating (FBG)-coupled ring laser sensor.
    • To integrate the interrogating source, sensing head, and readout instrument into a single fiber-optic device.
    • To develop a cost-effective and compact sensing solution with performance comparable to state-of-the-art sensors.

    Main Methods:

    • Utilizing a fiber Bragg grating (FBG) within a bidirectional fiber ring to couple counterpropagating modes.
    • Generating a splitting of resonant wavelengths proportional to FBG reflectivity.
    • Monitoring the beat note frequency generated by simultaneously lasing split resonances using a frequency counter.

    Main Results:

    • The sensor successfully integrates all essential components into a single fiber-optic device.
    • A beat note frequency is generated whose shift directly tracks changes in the FBG reflectivity spectrum.
    • The sensor eliminates the need for an optical spectrometer, significantly reducing size and cost.
    • Sensing performance is demonstrated to be comparable to existing state-of-the-art thermo-mechanical fiber sensors.

    Conclusions:

    • The demonstrated FBG-coupled ring laser sensor offers a highly integrated, cost-effective, and compact solution for fiber optic sensing.
    • The frequency-based readout mechanism simplifies the sensing setup and reduces overall system expenses.
    • This technology presents a promising alternative to conventional fiber optic sensing systems, particularly where size and cost are critical factors.