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Large interconnects in photorefractives: grating erasure problem and a proposed solution.

K Rastani, W M Hubbard

    Applied Optics
    |August 20, 2010
    PubMed
    Summary

    Photorefractive holographic interconnects face grating erasure limitations. A new architecture segregates holograms and read beams to minimize erasure, improving system density for optical interconnects.

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    Area of Science:

    • Optoelectronics
    • Materials Science
    • Optical Engineering

    Background:

    • Grating erasure in photorefractive materials limits holographic optical interconnect density.
    • Existing architectures using spatially and angularly multiplexed beams in bismuth silicon oxide (BSO) crystals are analyzed.
    • The time-exposure technique, used to compensate for grating erasure, has drawbacks.

    Purpose of the Study:

    • To analyze the problem of grating erasure in photorefractive-based holographic optical interconnects.
    • To evaluate an architecture using spatially multiplexed beams and angularly multiplexed input beams for recording gratings in a BSO crystal.
    • To propose a novel architecture that minimizes grating erasure during recording and reading.

    Main Methods:

    • Analysis of grating erasure in a BSO crystal for an 8x8 detector array interconnect.
    • Evaluation of drawbacks associated with the time-exposure technique.
    • Proposal of a novel architecture segregating holograms and read beams.

    Main Results:

    • Grating erasure poses a significant challenge to the density of photorefractive holographic optical interconnects.
    • The analyzed architecture, while attempting to mitigate cross erasure, still faces limitations.
    • The proposed architecture demonstrates a method to minimize erasure by segregating recording and reading beams.

    Conclusions:

    • Grating erasure is a critical factor limiting the performance and density of photorefractive holographic optical interconnects.
    • A novel architecture effectively minimizes grating erasure by separating holographic elements and read beams.
    • This approach offers a pathway to enhance the density and reliability of future optical interconnect systems.