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Tunable high-channel-count bandpass plasmonic filters based on an analogue of electromagnetically induced transparency

机译:基于电磁感应透明度的可调谐高通道数带通等离子体滤波器

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摘要

We have proposed a novel type of bandpass plasmonic filter consisting of metal-insulator-metal bus waveguides coupled with a series of side-coupled cavities and stub waveguides. The theoretical modeling demonstrates that our waveguide-resonator system performs a plasmonic analogue of electromagnetically induced transparency (EIT) in atomic systems, as is confirmed by numerical experiments. The plasmonic EIT-like response enables the realization of nanoscale bandpass filters with multiple channels. Additionally, the operating wavelengths and bandwidths of our filters can be efficiently tuned by adjusting the geometric parameters such as the lengths of stub waveguides and the coupling distances between the cavities and stub waveguides. The ultracompact configurations contribute to the achievement of wavelength division multiplexing systems for optical computing and communications in highly integrated optical circuits.
机译:我们提出了一种新型的带通等离子体激元滤波器,该滤波器由金属-绝缘体-金属总线波导与一系列侧耦合腔和短截线波导耦合而成。理论模型表明,我们的波导谐振器系统在原子系统中执行了电磁感应透明性(EIT)的等离子体模拟,这已通过数值实验得到了证实。类似于等离子EIT的响应可实现具有多个通道的纳米级带通滤波器。此外,我们的滤波器的工作波长和带宽可以通过调整几何参数(例如,短截线波导的长度以及空腔与短截线波导之间的耦合距离)来有效地进行调整。超紧凑的配置有助于实现用于高度集成的光学电路中的光学计算和通信的波分复用系统。

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