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Hybrid glass substrates for waveguide device manufacture.

S D Conzone, J S Hayden, D S Funk

    Optics Letters
    |November 28, 2007
    PubMed
    Summary

    Researchers developed robust hybrid glass substrates using a low-temperature joining process. These substrates enable simultaneous waveguide fabrication in active and passive regions, demonstrating potential for efficient hybrid laser devices.

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    Area of Science:

    • Materials Science
    • Optoelectronics
    • Photonics

    Background:

    • Traditional methods for fabricating integrated optical devices often involve complex, high-temperature processes.
    • Developing robust, versatile substrates is crucial for advancing integrated photonics and laser technologies.
    • Combining active (gain) and passive (waveguide) materials on a single substrate presents fabrication challenges.

    Purpose of the Study:

    • To develop a novel, low-temperature process for creating hybrid glass substrates.
    • To enable simultaneous waveguide fabrication in both active and passive glass regions.
    • To demonstrate the performance of a hybrid laser waveguide device.

    Main Methods:

    • A low-temperature process was employed to join active (Erbium-Ytterbium codoped) and passive phosphate glass.
    • The resulting hybrid substrates were subjected to conventional, water-based cutting, grinding, and polishing.
    • Waveguides were fabricated simultaneously in active and passive regions by immersing the substrate in a molten-salt bath.
    • Optical low-coherence reflectometry was used to measure interface reflectance.
    • A hybrid laser waveguide device was tested for slope efficiency.

    Main Results:

    • The hybrid substrates exhibited excellent chemical and physical robustness, compatible with standard processing techniques.
    • A low interface reflectance of -34+/-2 dB was achieved at 1531.2 nm.
    • The hybrid laser waveguide device demonstrated a significant slope efficiency of 33% at 1540 nm when pumped at 975 nm.

    Conclusions:

    • The novel low-temperature process successfully created robust hybrid glass substrates.
    • Simultaneous waveguide fabrication in active and passive regions is feasible.
    • The demonstrated hybrid laser waveguide device shows promising performance for integrated photonic applications.