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All-optical switching, bistability, and slow-light transmission in photonic crystal waveguide-resonator structures

机译:光子晶体波导谐振器结构中的全光切换,双稳态和慢光传输

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摘要

We analyze the resonant linear and nonlinear transmission through a photonic crystal waveguide side-coupled to a Kerr-nonlinear photonic crystal resonator. Firstly, we extend the standard coupled-mode theory analysis to photonic crystal structures and obtain explicit analytical expressions for the bistability thresholds and transmission coefficients which provide the basis for a detailed understanding of the possibilities associated with these structures. Next, we discuss limitations of standard coupled-mode theory and present an alternative analytical approach based on the effective discrete equations derived using a Green's function method. We find that the discrete nature of the photonic crystal waveguides allows a novel, geometry-driven enhancement of nonlinear effects by shifting the resonator location relative to the waveguide, thus providing an additional control of resonant waveguide transmission and Fano resonances. We further demonstrate that this enhancement may result in the lowering of the bistability threshold and switching power of nonlinear devices by several orders of magnitude. Finally, we show that employing such enhancements is of paramount importance for the design of all-optical devices based on slow-light photonic crystal waveguides.
机译:我们分析了通过耦合到Kerr非线性光子晶体谐振器的光子晶体波导的共振线性和非线性传输。首先,我们将标准耦合模式理论分析扩展到光子晶体结构,并获得双稳性阈值和透射系数的明确解析表达式,这为详细了解与这些结构相关的可能性提供了基础。接下来,我们讨论标准耦合模式理论的局限性,并提出一种基于格林函数方法导出的有效离散方程的替代分析方法。我们发现,光子晶体波导的离散性质允许通过相对于波导移位谐振器位置来实现新颖的,几何驱动的非线性效应增强,从而提供了谐振波导传输和Fano谐振的附加控制。我们进一步证明,这种增强可能会导致双稳态阈值和非线性设备的开关功率降低几个数量级。最后,我们表明采用这种增强功能对于基于慢光光子晶体波导的全光器件的设计至关重要。

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