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Compact titanium dioxide waveguides with high nonlinearity at telecommunication wavelengths.

Xiaowei Guan, Hao Hu, Leif K Oxenløwe

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    Titanium dioxide waveguides offer compact size, low loss, and high nonlinearity for photonic integrated circuits. These materials show promise for mass-produced, high-performance nonlinear optical applications.

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    Area of Science:

    • Materials Science
    • Photonics
    • Optical Engineering

    Background:

    • Photonic integrated circuits (PICs) require advanced waveguide materials for dense integration.
    • Existing materials often face trade-offs between compactness, low loss, high nonlinearity, and manufacturability.

    Purpose of the Study:

    • To fabricate and characterize titanium dioxide (TiO2) waveguides for PICs.
    • To evaluate the performance of TiO2 waveguides for nonlinear optical applications.

    Main Methods:

    • Fabrication of TiO2 waveguides with a 380 nm thick core.
    • Measurement of waveguide optical loss and mode size at 1550 nm.
    • Characterization of a microring resonator's quality factor.
    • Four-wave mixing experiments to determine nonlinear parameters.

    Main Results:

    • Achieved compact mode size (0.43 μm²) and low loss (5.4 ± 1 dB/cm) at 1550 nm.
    • Demonstrated a microring resonator with a loaded quality factor of 53500.
    • Measured a high nonlinear parameter (21-34 W⁻¹ m⁻¹) and nonlinear index (2.3-3.6 x 10⁻¹⁸ m²/W).
    • Achieved a wavelength conversion efficiency of -36.2 dB.

    Conclusions:

    • TiO2 waveguides exhibit excellent optical and nonlinear properties suitable for PICs.
    • The material's performance, combined with potential for dispersion engineering, makes it promising for nonlinear photonic applications.
    • TiO2 offers a viable material solution for mass-produced, high-performance photonic integrated circuits.