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Modeling of On-Chip Optical Nonreciprocity with an Active Microcavity

机译:具有主动微腔的片上光学不可逆模型

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On-chip nonreciprocal light transport holds a great impact on optical information processing and communications based upon integrated photonic devices. By harvesting gain-saturation nonlinearity, we recently demonstrated on-chip optical asymmetric transmission at telecommunication bands with superior nonreciprocal performances using only one active whispering-gallery-mode microtoroid resonator, beyond the commonly adopted magneto-optical (Faraday) effect. Here, detailed theoretical analysis is presented with respect to the reported scheme. Despite the fact that our model is simply the standard coupled-mode theory, it agrees well with the experiment and describes the essential one-way light transport in this nonreciprocal device. Further discussions, including the connection with the second law of thermodynamics and Fano resonance, are also briefly made in the end.
机译:片上不可逆光传输对基于集成光子器件的光学信息处理和通信产生了重大影响。通过收集增益饱和非线性度,我们最近证明了电信频段上的片上光学不对称传输,仅使用一个有源耳语-画廊模式微环形谐振器就具有优异的不可逆性能,超出了通常采用的磁光(法拉第)效应。在此,针对报告的方案进行了详细的理论分析。尽管我们的模型只是标准的耦合模式理论,但它与实验非常吻合,并描述了这种不可逆设备中必不可少的单向光传输。最后,还简短地进行了进一步的讨论,包括与热力学第二定律和法诺共振的联系。

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