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Quantum cascade lasers (QCLs) emitting at a wavelength of 3.8 μm were designed, fabricated, and characterized to provide efficient and compact sources for various mid-infrared applications, including free-space optical communication, gas sensing, and infrared countermeasures. The devices are based on strain-balanced InGaAs/AlInAs heterostructures grown on InP substrates. High-resolution X-ray diffraction confirmed excellent crystalline quality and precise layer periodicity. Ridge waveguide devices with high-reflectivity (HR) facet coatings demonstrated low threshold current densities, high slope efficiencies, and stable emission near 3.8 μm under both pulsed and continuous-wave (CW) operation at room temperature. Devices with a ridge width of 5 μm and a cavity length of 4 mm, featuring HR coatings, delivered CW powers exceeding 0.45 W at 300 K, with a threshold current density of 2.2 kA/cm 2 . The combination of HR coatings and optimized epilayer-down mounting significantly improved thermal management, enabling robust performance and enhanced output power stability. These results confirm the viability of short-wavelength QCLs for mid-infrared photonic systems, particularly in applications requiring compactness, spectral selectivity, and thermal resilience.
Pierściński et al. (Mon,) studied this question.
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