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Theoretical study of laser-mode competition in quantum-dot semiconductor lasers using a self-consistent electro-opto-thermal model

机译:用自一致电光热模型的量子点半导体激光激光模式竞争的理论研究

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摘要

We present a new model for quantum-dot (QD) semiconductor lasers which includes the self-consistent treatment of electrical, optical, and thermal interactions. The approach is developed from the energy balance equation to incorporate the carrier temperature and a three-level rate equation to describe the carrier and photon dynamics within the QD active region operating simultaneously on two longitudinal modes: via ground-state (GS) and first-excited- state (ES) transitions. Using the presented model, the steady-state, small-signal modulation response and transient device characteristics are calculated and analyzed. Similar to the situation of mode competition of laser modes, it is found that the light output power of the GS mode enters the roll-off regime, while the power of the ES mode increases. The model also predicts the negative temperature dependency of the power threshold for the ES mode, which can be understood from the negative temperature-dependent behavior of incomplete clamping of the ES population above the GS threshold. The simulated results are in good agreement with experimental data from the devices reported earlier. (C) 2017 Optical Society of America
机译:我们为量子点(QD)半导体激光器提供了一种新模型,其包括电,光学和热相互作用的自一致性处理。该方法是从能量平衡方程式开发的,以结合载波温度和三级速率方程,以描述在两个纵向模式上同时操作的QD活性区域内的载波和光子动力学:通过地 - 状态(GS)和第一 - 兴奋状态过渡。使用呈现的模型,计算和分析稳态,小信号调制响应和瞬态器件特性。类似于激光模式的模式竞争的情况,发现GS模式的光输出功率进入滚出方案,而ES模式的功率增加。该模型还预测ES模式的功率阈值的负温度依赖性,从GS阈值上方的ES群体的不完全钳位的负温度相关行为可以理解。模拟结果与先前报告的设备的实验数据很好。 (c)2017年光学学会

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