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Modeling transmitters, amplifiers and nonlinear circuits for the next generation optical networks

机译:为下一代光网络建模发射机,放大器和非线性电路

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摘要

In the current optical networks nonlinear interaction of optical signals with matter is often a nuisance in the operation of amplifiers, optical fibers and other linear devices. The next generation optical networks, on the other hand, need nonlinear optical components with signal processing capabilities. To create components that meet the demands of tomorrow, it is necessary to understand, control, exploit and enhance the available weak nonlinearities.In this thesis the dynamic properties of quantum dot lasers and linear optical amplifiers are investigated. Additionally, optical memories and logic ports exploiting a new type of nonlinearity based on gain clamped optical amplifiers and interferometers are proposed. The properties of quantum dot lasers are studied by using a parametrized model for the bandstructure of the dots and the surrounding layers. The model is used to calculate the absorption spectrum, refractive index and other properties of the lasers at different excitation levels.The properties of linear optical amplifiers, conventional gain clamped amplifiers and semiconductor optical amplifiers are described by a stochastic traveling wave rate equation model. The gain clamped optical amplifiers used together with interferometers are shown to provide a new fast nonlinearity, which can be used to construct coherent nonlinear optical circuits, including optical regenerators, flip-flop memories and logic gates.The speed of the nonlinear devices presented in this thesis is limited by the modulation response of the gain clamped optical amplifiers above the laser threshold in the regime where there always is a large photon population in the laser mode. The speed may therefore reach values in excess of 100 GHz, or even higher values if the level of optical technologies evolves closer to the level of silicon technology. In principle the flip-flop structure developed in this thesis is suitable for integration.
机译:在当前的光网络中,光信号与物质的非线性相互作用通常在放大器,光纤和其他线性装置的操作中很麻烦。另一方面,下一代光网络需要具有信号处理能力的非线性光学组件。要创建满足未来需求的组件,必须了解,控制,开发和增强可用的弱非线性。本文研究了量子点激光器和线性光放大器的动态特性。此外,提出了一种基于增益钳位的光放大器和干涉仪的利用新型非线性的光存储器和逻辑端口。通过使用参数化模型对量子点激光器及其周围层的能带结构进行研究,研究了量子点激光器的性能。该模型用于计算不同激发水平下激光器的吸收光谱,折射率和其他特性。线性光放大器,常规增益钳位放大器和半导体光放大器的性能由随机行波速率方程模型描述。展示了与干涉仪一起使用的增益钳位光放大器提供了一种新的快速非线性特性,可用于构建相干非线性光学电路,包括光再生器,触发器存储器和逻辑门。在激光模式下总是存在大量光子的状态下,增益受限的光放大器的调制响应会超出激光阈值,因此论文受到了限制。因此,如果光学技术的发展水平越来越接近硅技术的水平,则速度可能会超过100 GHz,甚至可能更高。原则上,本文开发的触发器结构适合于集成。

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    Oksanen Jani;

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  • 年度 2006
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