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Quantum cascade lasers with Y2O3 insulation layer operating at 8.1 µm.

JoonHyun Kang, Hyun-Duk Yang, Beom Soo Joo

    Optics Express
    |October 19, 2017
    PubMed
    Summary

    Researchers replaced silicon dioxide (SiO2) insulation with yttrium oxide (Y2O3) in diode-current quantum cascade lasers (DC-QCLs). This successfully demonstrated lasing operation around 8.1 µm, overcoming SiO2 absorption issues.

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    Area of Science:

    • Semiconductor devices
    • Optoelectronics
    • Quantum cascade lasers

    Background:

    • Silicon dioxide (SiO2) is a standard insulation layer in quantum cascade lasers (QCLs).
    • SiO2 exhibits a significant absorption peak between 8 to 10 µm, which can impede QCL performance in this wavelength range.
    • Alternative insulation materials are needed to optimize QCLs for specific spectral regions.

    Purpose of the Study:

    • To investigate the feasibility of using yttrium oxide (Y2O3) as an alternative insulation layer in diode-current QCLs (DC-QCLs).
    • To demonstrate lasing operation in a DC-QCL utilizing Y2O3.
    • To perform a 2D numerical analysis of the absorption coefficient in DC-QCL structures with varying parameters.

    Main Methods:

    • Fabrication of a DC-QCL structure employing Y2O3 as the insulation layer.
    • Experimental demonstration of lasing operation.
    • 2D numerical simulations to analyze the absorption coefficient based on insulating materials, waveguide width, and mesa angle.

    Main Results:

    • Successful demonstration of lasing operation in the DC-QCL at a wavelength of approximately 8.1 µm.
    • Yttrium oxide (Y2O3) proved to be a viable alternative insulation material, avoiding the problematic absorption band of SiO2.
    • Numerical analysis provided insights into the impact of structural parameters on the absorption characteristics.

    Conclusions:

    • Yttrium oxide (Y2O3) is a suitable material for insulation layers in DC-QCLs, enabling operation around 8.1 µm.
    • The use of Y2O3 circumvents the absorption limitations associated with SiO2 in this spectral range.
    • The study highlights the importance of material selection and structural design for optimizing QCL performance.