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Investigation of Thermal Effects in Quantum-Cascade Lasers

机译:量子级联激光器的热效应研究

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摘要

The development of a thermal model for quantum cascade lasers (QCLs) is presented. The model is used in conjunction with a self-consistent scattering rate calculation of the electron dynamics of an InGaAs-AlAsSb QCL to calculate the temperature distribution throughout the device which can be a limiting factor for high temperature operation. The model is used to investigate the effects of various driving conditions and device geometries, such as epilayer down bonding and buried heterostructures, on the active region temperature. It is found that buried heterostructures have a factor of eight decrease in thermal time constants compared to standard ridge waveguide structures in pulsed mode and allow a approx78percent increase in heat sink temperature compared to epilayer down mounted devices in continuous-wave mode. The model presented provides a valuable tool for understanding the thermal dynamics inside a quantum cascade laser and will help to improve their operating temperatures.
机译:介绍了量子级联激光器(QCL)的热模型的开发。该模型与InGaAs-AlAsSb QCL的电子动力学的自洽散射率计算结合使用,以计算整个器件的温度分布,这可能是高温操作的限制因素。该模型用于研究各种驱动条件和器件几何形状(例如外延层向下键合和掩埋异质结构)对有源区温度的影响。发现与脉冲模式下的标准脊形波导结构相比,掩埋异质结构的热时间常数减少了八倍,与连续波模式下的外延层向下安装的器件相比,埋入式异质结构的散热器温度提高了约78%。提出的模型为了解量子级联激光器内部的热力学提供了宝贵的工具,并将有助于改善其工作温度。

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