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Extended C-band tunable multi-channel InP-based coherent receiver PICs.

A Hosseini, M Lu, R Going

    Optics Express
    |October 19, 2017
    PubMed
    Summary
    This summary is machine-generated.

    New indium phosphide (InP) photonic integrated circuits (PICs) and transceiver modules enable high-capacity data transmission. These advanced InP PICs achieve 4.9 Tb/s, supporting future high-speed optical communication networks.

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    Area of Science:

    • Photonics
    • Optical Communications
    • Semiconductor Devices

    Background:

    • Advancements in optical communication demand higher data rates and integration.
    • Indium phosphide (InP) is a key material for high-performance photonic integrated circuits (PICs).

    Purpose of the Study:

    • To describe fully integrated, multi-channel InP-based coherent receiver PICs and transceiver modules.
    • To demonstrate extended C-band tunability and high data rates for these InP PICs.

    Main Methods:

    • Development of monolithic, multi-channel InP receiver PICs.
    • Testing PICs and transceiver modules at 33 and 44 Gbaud under dual polarization (DP) 16-QAM modulation.
    • Demonstration of simultaneous six-channel operation.

    Main Results:

    • Fourteen-channel InP PICs achieved 44 Gbaud under DP 16-QAM, reaching 4.9 Tb/s total capacity.
    • Commercial transceiver modules demonstrated >1.2 Tbit/s aggregate capacity at 33 Gbaud with DP 16-QAM.
    • Extended C-band tunability was achieved for the InP-based coherent receivers.

    Conclusions:

    • Monolithic InP receiver PICs demonstrate significant integration and data rate scaling capabilities.
    • The developed transceiver modules support high aggregate data capacities for advanced optical networks.
    • These InP-based solutions are crucial for meeting the growing demands of high-speed optical communication.