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Wavelength-multiplexed reconfigurable interconnect using a volume holographic lens array.

B Cantanzaro, J Ma, Y Fainman

    Optics Letters
    |October 27, 2009
    PubMed
    Summary

    Wavelength-multiplexed holograms store optical interconnect stages. This method enables dense data storage using lithium niobate (LiNbO3) and precise wavelength control for advanced optical computing applications.

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    Area of Science:

    • Optics and Photonics
    • Optical Computing
    • Holography

    Background:

    • Wavelength-multiplexed holograms offer a method for high-density optical data storage.
    • Optical interconnects are crucial for scalable parallel processing in computing systems.

    Purpose of the Study:

    • To demonstrate the feasibility of using wavelength-multiplexed holograms for storing N-node butterfly interconnects.
    • To investigate the performance of lithium niobate (LiNbO3) for holographic data storage in the visible spectrum.

    Main Methods:

    • Recording and reconstructing holograms using LiNbO3 crystals.
    • Utilizing a wavelength range of 790 to 800 nm with a minimum separation of 0.6 nm.
    • Implementing a 4x4 array of superimposed lenses to create a semi-space-variant optical interconnect.

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    Main Results:

    • Successfully recorded and reconstructed wavelength-multiplexed holograms for an optical interconnect.
    • Achieved a space-bandwidth product exceeding 2x10^3 for individual 2mm x 2mm lenses.
    • Demonstrated the potential for dense holographic data storage with precise wavelength control.

    Conclusions:

    • Wavelength-multiplexed holography is a viable technique for realizing complex optical interconnects.
    • LiNbO3 is a suitable material for this application, enabling high storage density and performance.
    • The demonstrated semi-space-variant interconnect shows promise for future optical computing architectures.