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    Area of Science:

    • Photonics and Microwave Engineering
    • Materials Science and Engineering
    • Electrical and Computer Engineering

    Background:

    • Integrated Microwave Photonics (IMWP) leverages Photonic Integrated Circuits (PICs) for advanced signal processing.
    • Integrated Waveguide Bragg Gratings (WBGs) offer compact, flexible amplitude and phase control for MWP.
    • Silicon photonics enables high-yield integration of complex active and passive functionalities on a single chip.

    Purpose of the Study:

    • To review recent advances in integrated WBGs for IMWP applications.
    • To analyze the advantages of integrated WBG realization in MWP.
    • To explore the potential of silicon photonics for integrated MWP functionalities.

    Main Methods:

    • Review of existing literature on integrated WBGs for MWP.
    • Analysis of WBG design principles for amplitude and phase response control.
    • Experimental demonstration of a novel dual phase-shifted WBG (DPS-WBG) for true-time-delay (TTD) lines.

    Main Results:

    • Integrated WBGs provide a versatile platform for MWP signal processing.
    • Silicon photonics offers a promising route for integrating complex MWP functionalities.
    • A novel, continuously-tunable, integrated TTD line based on DPS-WBG was successfully demonstrated.

    Conclusions:

    • Integrated WBGs are key building blocks for advanced MWP signal processing.
    • Silicon photonics is poised to revolutionize integrated MWP systems.
    • The demonstrated DPS-WBG offers a simple yet effective solution for tunable TTD applications.