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The physics of catastrophic optical damage in high-power AlGaInP laser diodes

机译:大功率AlGaInP激光二极管中灾难性光学损坏的物理原理

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An innovative combination of concepts, namely microphotoluminescence (μPL) mapping, focused ion beam (FIB) microscopy, micro-Raman spectroscopy, and high-speed thermal imaging, was employed to reveal the physics behind catastrophic optical damage (COD), its related temperature dynamics, as well as associated defect and near-field patterns.μPL mapping showed that COD-related defects are composed of highly nonradiative complex dislocations, which start from the output facet and propagate deep inside the cavity. Moreover, FIB analysis confirmed that those dark line defects are confined to the active region, including the quantum wells and partially the waveguide, In addition, the COD dependence on temperature and power was analyzed in detail by micro-Raman spectroscopy and real-time thermal imaging. For AlGaInP lasers in the whole spectral range of 635 to 650 ran, it was revealed that absorption of stimulated photons at the laser output facet is the major source of facet heating, and that a critical facet temperature must be reached in order for COD to occur. A linear relationship between facet temperature and near-field intensity has also been established. This understanding of the semiconductor physics behind COD is a key element for further improvement in output power of AlGaInP diode lasers.
机译:创新性地结合了概念,即微光致发光(μPL)映射,聚焦离子束(FIB)显微镜,微拉曼光谱和高速热成像,揭示了灾难性光学损伤(COD)及其相关温度背后的物理原理动态,以及相关的缺陷和近场模式。 μPL映射显示,与COD相关的缺陷由高度非辐射的复杂位错组成,这些位错从输出面开始并在腔体内深处传播。此外,FIB分析证实,那些暗线缺陷被限制在包括量子阱和部分波导在内的有源区域内。此外,还通过微拉曼光谱和实时热分析了COD对温度和功率的依赖性。成像。对于在635至650 ran整个光谱范围内的AlGaInP激光器,发现在激光输出面上吸收受激光子是面加热的主要来源,并且必须达到临界面温度才能发生COD。 。刻面温度与近场强度之间的线性关系也已建立。对COD背后的半导体物理学的这种理解是进一步提高AlGaInP二极管激光器的输出功率的关键要素。

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