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Microwave Properties of One-dimensional Photonic Structures Based on Composite Layers Filled with Nanocarbon

机译:基于纳米碳复合层的一维光子结构的微波特性

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摘要

This work presents the results of computer modeling and experimental measurements of microwave transmission properties for one-dimensional periodic multi-layered photonic structures (PCs), composed of epoxy layers and composite layers filled with nanocarbon particles—multi-walled carbon nanotubes and graphite nanoplatelets. The results show that the characteristics of observed photonic band gaps in transmission spectra of PC can be controlled by varying the parameters of layers, namely, the complex permittivity and the layer thickness. It was found that the insertion of the defects (for instance, magnetic layer) into photonic structure can change the EMR transmission spectrum. The comparative analysis of EMR transmission spectra for investigated photonic structures has showed good agreement between the experimental and simulated data. It was found that EMR absorption in composite layers of photonic structures shifts the transmission spectra to the smaller values of EMR transmission index and reduces the sharpness of photonic band gaps. Thus, by changing the parameters of composite layers in photonic structure, we can obtain the tunable photonic band gaps, necessary for technological applications in devices, capable of storing, guiding, and filtering microwaves.
机译:这项工作介绍了一维周期性多层光子结构(PC)的微波传输特性的计算机建模和实验测量结果,该结构由环氧树脂层和填充有纳米碳颗粒的复合层-多壁碳纳米管和石墨纳米片组成。结果表明,通过改变层的参数,即复介电常数和层厚度,可以控制在PC的透射光谱中观察到的光子带隙的特性。已经发现,将缺陷(例如,磁性层)插入光子结构中可以改变EMR透射谱。对研究的光子结构的EMR透射光谱的比较分析表明,实验数据和模拟数据之间具有良好的一致性。已经发现,在光子结构的复合层中的EMR吸收将透射光谱移动到较小的EMR透射指数值,并且降低了光子带隙的清晰度。因此,通过更改光子结构中复合层的参数,我们可以获得设备中的技术应用所必需的可调谐光子带隙,该带隙能够存储,引导和过滤微波。

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