Output facet heating mechanism for uncoated high power long wave infrared quantum cascade lasers
Autor: | Monas Shahzad, Matthew Suttinger, Tamil S. Sakthivel, Enrique Sanchez, Hong Shu, Dagan Hathaway, Rowel Go, Sudipta Seal, Arkadiy Lyakh |
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Jazyk: | angličtina |
Rok vydání: | 2020 |
Předmět: |
010302 applied physics
Materials science business.industry General Physics and Astronomy Optical power 02 engineering and technology 021001 nanoscience & nanotechnology Laser 01 natural sciences lcsh:QC1-999 law.invention X-ray photoelectron spectroscopy law Cascade 0103 physical sciences Thermal Optoelectronics 0210 nano-technology Joule heating business Quantum cascade laser Quantum lcsh:Physics |
Zdroj: | AIP Advances, Vol 10, Iss 8, Pp 085104-085104-4 (2020) |
ISSN: | 2158-3226 |
Popis: | Output facet temperatures of an uncoated high power continuous-wave quantum cascade laser (QCL) emitting at 8.5 μm were measured by using micro-Raman thermometry. The rate of the measured temperature changes with the injected electrical power increased from 6.5 K/W below the laser threshold to 12.3 K/W above the threshold. In addition, the measured temperature rise exceeded 220 K at an optical power of 0.9 W, well above the model projections based only on Joule heating. Facet oxidation was characterized via x-ray photoelectron spectroscopy measurements at incremental etch depths. While the oxidation reactions of InP and Ga were observed only at the surface level, the measured penetration of native Al2O3 was ∼24 nm. COMSOL thermal modeling demonstrated that light reabsorption by the native Al2O3 layer could well explain the additional temperature rise above the threshold. These results suggest that facet oxidation must be addressed to ensure the reliability of high-power long wave infrared QCLs. |
Databáze: | OpenAIRE |
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