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Related Experiment Video

Updated: Jun 22, 2026

Fabrication And Characterization Of Photonic Crystal Slow Light Waveguides And Cavities
11:08

Fabrication And Characterization Of Photonic Crystal Slow Light Waveguides And Cavities

Published on: November 30, 2012

Slow-light, band-edge waveguides for tunable time delays.

M Povinelli, Steven Johnson, J Joannopoulos

    Optics Express
    |June 6, 2009
    PubMed
    Summary

    We developed compact, tunable optical time delay devices using slow-light waveguides. These devices offer significant time delays in small footprints, enabling new photonic applications.

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    Area of Science:

    • Photonics
    • Integrated Optics
    • Waveguide Technology

    Background:

    • Optical time delays are crucial for various photonic applications.
    • Existing methods for optical time delays often require large device footprints.
    • Miniaturization and tunability are key challenges in integrated photonics.

    Purpose of the Study:

    • To propose and analyze slow-light, band-edge waveguides for compact, integrated, tunable optical time delays.
    • To introduce figures of merit for quantifying device sensitivity and signal degradation.
    • To demonstrate a design strategy for efficient and tunable optical delay lines.

    Main Methods:

    • Utilizing slow-light phenomena at the photonic band edge of waveguides.
    • Developing figures of merit to assess device performance (sensitivity and dispersion).
    • Employing adiabatic taper designs for low-reflection grating structures.
    • Cascading gratings to achieve constant tunable time delay and compensate for dispersion.

    Main Results:

    • Slow group velocities at the band edge enable large time delays with small refractive index changes, reducing device size.
    • A simple quadratic-band model accurately predicts performance for realistic 3D grating structures.
    • Adiabatic tapers achieve <0.1% reflection in short grating lengths (10-20 periods).
    • Cascading two gratings provides a constant tunable time delay over bandwidths >100 GHz.

    Conclusions:

    • Slow-light, band-edge waveguides offer a promising route to compact, integrated, tunable optical time delay devices.
    • The proposed design methodology simplifies device engineering and performance prediction.
    • Picosecond-range tunable delays are achievable with current silicon-on-insulator fabrication technology.

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