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Reduced Risk of Catastrophic Optical Mirror Damage in High Power Tapered Lasers using Intra-cavity Diverging Lens

机译:使用腔内发散透镜降低大功率锥形激光器中灾难性光学镜损坏的风险

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This paper approaches the problem of catastrophic optical mirror damage from a geometrical waveguide point of view. Instead of engineering the characteristics of the semiconductor material at the facet of the laser using quantum-well intermixing or other sophisticated wafer growth technique, a simple intra-cavity diverging lens concept is proposed and demonstrated to be capable of effectively expanding the lateral optical mode in order to counter the effect of SHB and thermal lensing effect, thereby reducing the risk of COMD. The Gaussian output beam profile is maintained throughout the whole of the current range tested, showing that expanding the nearfield at facet using integrated lens does not compromise the brightness of the laser. A key finding in this work is that the diverging effect on an optical mode is a thoroughly scalable effect that can be engineered by varying the etch-depth of the integrated lens. Fabrication of the lens is compatible with existing laser manufacturing process flow in that it can be easily implemented either by postprocessing technology or by an additional lithographical step. This opens up new possibility in device design, with the beam width along the lateral direction being a parameter that can be optimized in isolation.
机译:本文从几何波导的角度探讨了灾难性光学镜损坏的问题。代替使用量子阱混合或其他先进的晶片生长技术在激光器的端面上设计半导体材料的特性,而是提出了一种简单的腔内发散透镜概念,并证明了该概念能够有效地扩展横向光学模式。为了抵消SHB效应和热透镜效应,从而降低COMD风险。高斯输出光束分布在测试的整个电流范围内均保持不变,这表明使用集成透镜扩展刻面的近场不会损害激光器的亮度。这项工作的关键发现是,光学模式的发散效应是一种完全可扩展的效应,可以通过改变集成透镜的蚀刻深度来设计。透镜的制造与现有的激光器制造工艺流程兼容,因为它可以通过后处理技术或其他光刻步骤轻松实现。这为设备设计开辟了新的可能性,沿横向方向的光束宽度是可以单独优化的参数。

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