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首页> 外文期刊>Physical review >Disorder-induced incoherent scattering losses in photonic crystal waveguides: Bloch mode reshaping, multiple scattering, and breakdown of the Beer-Lambert law
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Disorder-induced incoherent scattering losses in photonic crystal waveguides: Bloch mode reshaping, multiple scattering, and breakdown of the Beer-Lambert law

机译:光子晶体波导中无序诱发的非相干散射损耗:Bloch模式重塑,多次散射和比尔-朗伯定律的分解

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摘要

Through a combined theoretical and experimental study of disorder-induced incoherent scattering losses in slow-light photonic crystal slab waveguides, we show the importance of Bloch mode reshaping and multiple scattering. We describe a convenient and fully three-dimensional theoretical treatment of disorder-induced extrinsic scattering, including the calculation of backscatter and out-of-plane losses per unit cell, and the extrapolation of the unit-cell loss to the loss for an entire disordered waveguide. The theoretical predictions, which are also compared with recent measurements on dispersion engineered silicon waveguides, demonstrate the failure of the Beer-Lambert law due to multiple scattering. We also explain why the previously assumed group velocity scalings of disorder-induced loss break down in general.
机译:通过结合理论和实验研究慢光光子晶体平板波导中由无序引起的非相干散射损耗,我们显示了Bloch模式重塑和多重散射的重要性。我们描述了一种方便且完整的三维理论,用于治疗无序诱发的外在散射,包括计算每单位晶格的反向散射和平面外损耗,以及将单位晶格损耗外推至整个无序的损耗波导。理论预测值也与最近在色散工程硅波导上的测量结果进行了比较,证明了由于多重散射而导致的比尔-朗伯定律的失败。我们还解释了为什么以前假定的无序诱发的损失的群速度定标通常会分解。

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