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Optimized VCSELs for high power arrays

机译:针对大功率阵列的优化VCSEL

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High-power VCSEL systems with multi kilowatt output power require a good electro-optical efficiency at the point of operation i.e. at elevated temperature. The large number of optimization parameters can be structured in a way that separates system and assembly considerations from the minimization of electrical and optical losses in the epitaxially grown structure. Temperature dependent functions for gain parameters, internal losses and injection efficiency are derived from a fit to experimental data. The empirical description takes into account diameter dependent effects like current spreading or temperature dependent ones like voltage drops over hetero-interfaces in the DBR mirrors. By evaluating experimental measurements of the light output and voltage characteristics over a large range of temperature and diameter, wafer-characteristic parameters are extracted allowing to predict the performance of VCSELs made from this material in any array and assembly configuration. This approach has several beneficial outcomes: Firstly, it gives a general description of a VCSEL independent of its geometry, mounting and detuning, secondly, insights into the structure and the underlying physics can be gained that lead to the improvement potential of the structure and thirdly the performance of the structure in arrays and modules can be predicted. Experimental results validate the approach and demonstrate the significantly improved VCSEL efficiency and the benefit in high power systems.
机译:具有几千瓦输出功率的大功率VCSEL系统在工作点(即在高温下)需要良好的电光效率。可以以将系统和组装考虑与外延生长结构中的电损耗和光损耗最小化分开的方式构造大量优化参数。增益参数,内部损耗和注入效率的温度相关函数是根据对实验数据的拟合得出的。经验描述考虑了与直径有关的效应(例如电流扩展)或与温度有关的效应(例如在DBR镜中的异质界面上的电压降)。通过评估在较大温度和直径范围内的光输出和电压特性的实验测量结果,可以提取晶片特性参数,从而可以预测由这种材料制成的VCSEL在任何阵列和组件配置中的性能。这种方法有几个有益的结果:首先,它对VCSEL的几何形状,安装和失谐进行了概述,其次,可以深入了解结构和底层物理原理,从而提高了结构的潜力,其次,可以预测阵列和模块中结构的性能。实验结果验证了该方法并证明了VCSEL效率的显着提高以及在大功率系统中的优势。

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