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Design of ultra-high power multisection tunable lasers

机译:超高功率多节可调谐激光器的设计

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摘要

Monolithic tunable lasers have been a sought-after dream for more than 20 years, due to their unique attributes and potential applications. They are expected to have significant applications in many areas, from fiber optics to medical applications, especially in fiber optical telecommunications, driven by the huge demand for telecommunication bandwidth. This paper introduces novel approaches on how to achieve ultra-high power in the designs of practical InGaAsP-InP-based multisection widely tunable lasers. The inventive ideas basically are comprised of three parts. First, to increase the facet optical output power by the inclusion of an InP spacer layer below the ridge and above the multiple quantum wells (MQWs) stack, in order to have extra freedom in the control of widening the single-mode ridge width. Second, to reduce the free-carrier absorption loss by the inclusion of a graded-index separate-confinement heterostructure (GRIN-SCH) structure below the MQWs stack and above the buffer layer, so as to largely shift the optical power distribution to the intrinsic and n-doped sides of the epilayer structure where the free-carrier absorption losses are lower than that of the p-doped side. Third, optimized butt-joint angles are designed to tackle the butt-joint reflection problems and optimize the operation performance of multisection tunable laser devices. As a result, the facet output power can be increased by up to 83% compared with conventional designs, and the reflectivity across butt-joints in multisection devices can be greatly reduced.
机译:由于其独特的属性和潜在的应用,单片可调激光器一直是20多年来备受追捧的梦想。由于对电信带宽的巨大需求,它们有望在从光纤到医疗应用的许多领域中得到重要应用,特别是在光纤电信中。本文介绍了在实际的基于InGaAsP-InP的多节宽可调激光器设计中如何实现超高功率的新颖方法。本发明的思想基本上包括三个部分。首先,通过在脊下方和多量子阱(MQW)堆栈上方包含InP隔离层来增加刻面光输出功率,以便在控制单模脊宽度时具有更大的自由度。其次,通过在MQWs堆栈下方和缓冲层上方包含渐变折射率分离限制异质结构(GRIN-SCH)结构来减少自由载流子吸收损耗,从而将光功率分布很大程度上移至本征外延层结构的n掺杂侧,其中自由载流子吸收损耗低于p掺杂侧。第三,设计优化的对接角度以解决对接反射问题,并优化多节可调激光器的工作性能。结果,与传统设计相比,小面输出功率可以增加高达83%,并且可以大大降低多节装置中对接接头的反射率。

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