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Theoretical Design of Nano-Layered Al/SiO_2 Metamaterial with Hyperbolic Dispersion with Minimum Losses

机译:纳米层间Al / SiO_2超曲面的理论设计,具有最小损耗的双曲分散

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Motivated by a greater need for increased performance in modern-day technology, this paper shows the results of theoretical calculations for the optical properties of Al/SiO_2 nano-layered metamaterial with hyperbolic dispersion. Our main focus is on designing a metamaterial with low losses, since losses might outweigh any increase in speed of photonic devices. We have investigated the effect of three major variables (number/thickness of the Al layers and Al fill fraction) on inherent losses and hyperbolic dispersion using the effective medium approximation with non-local corrections. Our model predicts a variation of the dielectric permittivity only in the perpendicular direction as the number of Al layers changes. First, we present the results of the detailed study of varying the number of Al layers, N, in attempt to find the "saturation limit" of non-local corrections in Al/SiO_2 layers. Next, we changed Al fill fraction in a sample of N= 20 layers to find parameters for the material with minimized losses. We found that both of these effects determine the transition wavelength to hyperbolic dispersion, which allows for fine-tuning of the optical properties for future applications.
机译:在现代技术中提高性能的动机,本文展示了具有双曲分散的Al / SiO_2纳米层材料的光学性质的理论计算结果。我们的主要重点是设计具有低损耗的超材料,因为损失可能超过光子器件速度的任何增加。我们研究了三个主要变量(Al层和Al填充分数的数量/厚度)对使用非局部校正的有效介质近似的固有损耗和双曲分散的影响。由于Al层的数量改变,我们的模型仅在垂直方向上预测介电介电常数的变化。首先,我们介绍了改变Al层数的详细研究的结果,以便在Al / SiO_2层中找到非局部校正的“饱和极限”。接下来,我们在n = 20层的样本中改变了Al填充部分,以找到具有最小化损耗的材料的参数。我们发现这两种效果都决定了转换波长到双曲分散,这允许微调光学特性以供将来的应用。

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