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Rethinking and redesigning the semiconductor laser/quantum noise controlled semiconductor lasers

机译:重新思考和重新设计半导体激光器/量子噪声控制的半导体激光器

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The present canonical design of the semiconductor laser (SCL), in force since The early 1970s, is incompatible with high coherence (narrow linewidth). The reason is fundamental and is a consequence of the quantum-mandated umbilical relationship between induced emission (gain) and spontaneous emission (noise) exacerbated by the modal concentration of optical energy in the high loss III-V material. We demonstrate, theoretically and experimentally, a new design paradigm which results in over three orders of magnitude reduction in the spectral linewidth of the SCL compared to commercial lasers now deployed. The key difference is a radical (some 99% in our case) transfer of stored optical energy from the III-V material to nearly transparent silicon which is an integral part of the laser resonator. This laser should constitute a serious candidate to take over the role of the Distributed Feedback (DFB) SCL as the light source for future coherent optical networks.
机译:自1970年代初以来生效的当前半导体激光器(SCL)的规范设计与高相干性(窄线宽)不兼容。原因是根本的,并且是高损耗III-V材料中光能的模态集中加剧了感应发射(增益)和自发发射(噪声)之间量子控制的脐带关系的结果。我们在理论上和实验上证明了一种新的设计范例,与目前部署的商用激光器相比,该范例可以使SCL的光谱线宽减少三个数量级以上。关键的区别是所存储的光能从III-V材料到几乎透明的硅的自由基转移(在我们的案例中约为99%),这是激光谐振器不可或缺的一部分。该激光器将成为接替分布式反馈(DFB)SCL作为未来相干光网络光源的角色的严肃候选人。

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