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Microscopic simulation of the temperature dependence of static and dynamic 1.3-Μm multi-quantum-well laser performance

机译:静态和动态1.3-μm多量子阱激光器性能与温度的关系的微观模拟

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摘要

The temperature dependence of the performance of 1.3-Μm Fabry-Perot (FP) multiple-quantum-well (MQW) lasers is analyzed using detailed microscopic simulations. Both static and dynamic properties are extracted and compared to measurements. Devices with different profiles of acceptor doping in the active region are studied. The simulation takes into account microscopic carrier transport, quantum mechanical calculation of the optical and electronic quantum well properties, and the solution of the optical mode. The temperature dependence of the Auger coefficients is found to be important and is represented by an activated form. Excellent agreement between measurement and simulation is achieved as a function of both temperature and doping profile for static and dynamic properties of the lasers, threshold current density, and effective differential gain. The simulations show that the static carrier density, and hence the contribution to the optical gain, varies significantly from the quantum wells on the p-side of the active layer to those on the n-side. Furthermore, the modal differential gain and the carrier density modulation also vary. Both effects are a consequence of the carrier dynamics involved in transport through the MQW active layer. Despite the complexity of the dynamic response of the MQW laser, the resonance frequency is determined by an effective differential gain, which we show can be estimated by a gain-weighted average of the local differential gain in each well.
机译:使用详细的微观模拟分析了1.3微米法布里-珀罗(FP)多量子阱(MQW)激光器的性能与温度的关系。提取静态和动态属性,并将其与测量结果进行比较。研究了在有源区中具有不同受体掺杂分布的器件。该模拟考虑了微观载流子传输,光学和电子量子阱性质的量子力学计算以及光学模式的解。发现俄歇系数的温度依赖性很重要,并以激活形式表示。温度和掺杂分布随激光器的静态和动态特性,阈值电流密度和有效差分增益的变化,在测量和仿真之间实现了极好的一致性。模拟表明,从有源层p侧的量子阱到n侧的量子阱,静态载流子密度以及对光学增益的贡献都发生了显着变化。此外,模态差分增益和载流子密度调制也变化。这两种效应都是通过MQW有源层传输所涉及的载流子动力学的结果。尽管MQW激光器的动态响应非常复杂,但谐振频率是由有效差分增益确定的,我们显示可以通过每个孔中本地差分增益的增益加权平均值进行估算。

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