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Simulations of boundary layers and point defects in coupled VCSEL arrays

机译:耦合VCSEL阵列中边界层和点缺陷的仿真

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摘要

The inherent gain dependence on carrier depletion and on the lateral cavity interactions differentiates active photonic lattices from passively coupled models, employing a given complex gain profile. This paper addresses coupled vertical-cavity surface-emitting laser array effects due to finite boundaries and the possibility of individual bias failures, of interest for practical applications. The "cold-cavity" characteristic parameters are assumed identical, focusing on biasing defects and site vacancies. Analysis and numerical simulations based on the tight-binding approximation show that phase-locking persists in finite arrays. Self-regulation of the edge cavity density and power generate boundary layers of differentiated cavity operation values. The inter-cavity phase shift remains nearly uniform, with a small superimposed linear slope caused by cross-cavity reflection interference from distributed Bragg reflectors. Phase locking is robust against partial or complete failure to lase for individual cavity sites, or even entire rows, due to biasing errors.
机译:固有的增益依赖于载流子耗尽和横向腔相互作用,从而采用给定的复杂增益曲线将有源光子晶格与无源耦合模型区分开。本文讨论了由于有限边界和个别偏置故障的可能性而导致的垂直腔表面发射激光器耦合效应,这在实际应用中很有意义。假定“冷腔”特征参数相同,重点在于偏置缺陷和位置空位。基于紧约束近似的分析和数值模拟表明,锁相在有限阵列中持续存在。边缘腔的密度和功率的自调节会生成不同腔操作值的边界层。腔内相移保持几乎均匀,并且由于来自分布式布拉格反射器的跨腔反射干扰而导致较小的叠加线性斜率。锁相具有很强的抵抗力,可以防止由于偏置误差而导致单个腔部位甚至整个行发生部分或全部失光。

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