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Ultra-broadband Optical Gain Engineering in Solution-processed QD-SOA Based on Superimposed Quantum Structure

机译:基于叠加量子结构的固溶QD-SOA超宽带光增益工程

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摘要

In this work, the optical gain engineering of an ultra-broadband InGaAs/AlAs solution-processed quantum dot (QD) semiconductor optical amplifier using superimposed quantum structure is investigated. The basic unit in the proposed structure (QDs) is designed and fabricated using solution-processed methods with considerable cost-effectiveness, fabrication ease, and QDs size tunability up to various limits (0.1 nm up to the desired values), considering suitable synthesis methods. Increasing the number of QDs, the device can span more than 1.02 μm (O, C, S, and L bands) using only one type of material for all QDs, and is not restricted to this limit in case of using more QD groups. Also, it can manipulate the optical gain peak value, spectral coverage, and resonant energy for customized optical windows, among which 1.31 μm and 1.55 μm are simulated as widely-applicable cases for model validation. This makes the device a prominent candidate for ultra-wide-bandwidth and also customized-gain applications in general. Variation impact of homogeneous and inhomogeneous broadenings, injection current and number of QD groups on optical gain are explained in detail. Besides proposing a design procedure for implementation of an ultra-broadband optical gain using superimposed QDs in solution-processed technology, the proposed gain engineering idea using this technology provides practically infinite bandwidth and an easy way to realize. By introducing this idea, one more step is actually taken to approach the effectiveness of solution process technology.
机译:在这项工作中,研究了使用叠加量子结构的超宽带InGaAs / AlAs溶液处理量子点(QD)半导体光放大器的光学增益工程。拟议结构(QDs)的基本单元是使用固溶处理方法设计和制造的,考虑到合适的合成方法,该方法具有相当高的成本效益,制造简便性,并且QDs的尺寸可调性高达各种限制(0.1μnm至所需值)。 。随着QD数量的增加,对于所有QD仅使用一种类型的材料,该设备的跨度就可以超过1.02μm(O,C,S和L波段),并且在使用更多QD组的情况下,该设备不受此限制。此外,它还可以为定制的光学窗操纵光学增益峰值,光谱覆盖范围和共振能量,其中1.31μm和1.55μm被模拟为广泛用于模型验证的情况。这使得该设备成为超宽带和定制增益应用的主要候选产品。详细解释了均匀和不均匀展宽,注入电流和QD基团数量对光学增益的变化影响。除了提出一种解决方案处理技术中使用叠加QD来实现超宽带光增益的设计程序外,所提出的利用该技术的增益工程构想还提供了实际上无限的带宽和简便的实现方法。通过引入这个想法,实际上又采取了一个步骤来解决解决方案过程技术的有效性。

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