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Thermal properties of multiple quantum wells used in vertical-external-cavity surface-emitting lasers

机译:垂直外腔表面发射激光器中使用的多个量子阱的热性质

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Accurate thermal properties of multiple quantum wells (MQWs) in the active region of an optically pumped vertical-external-cavity surface-emitting laser (VECSEL) are crucial for designing the thermal management of the laser. In existing related research, MQWs were regarded as bulk materials in the thermal analysis, higher thermal conductivity was employed, and the temperature rise in the active region was underestimated. We use three theoretical methods, in which various nanoscale effects are considered, to calculate the thermal conductivity of InGaAs/GaAs MQWs used in 1-µm waveband VECSEL. Theoretical results are compared to the reported experimental data, and the one more consistent with experiments is picked out. By the use of the computed thermal conductivity of InGaAs/GaAs MQWs, temperature rise in a 980-nm VECSEL is simulated and the results are in good agreement with measurements.
机译:光泵浦垂直外腔表面发射激光器(VECSEL)的有源区域中的多个量子阱(MQW)的准确热属性对于设计激光器的热管理至关重要。在现有的相关研究中,MQWs在热分析中被视为散装材料,采用了更高的导热率,而低估了有源区的温度升高。我们使用三种考虑了各种纳米尺度效应的理论方法来计算用于1-µm波段VECSEL的InGaAs / GaAs MQW的热导率。将理论结果与报告的实验数据进行比较,然后选择与实验更一致的一种。通过使用计算出的InGaAs / GaAs MQWs的热导率,可以模拟980 nm VECSEL中的温度上升,其结果与测量结果非常吻合。

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