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Multi-channel photonic bandgap engineering in hyperbolic graded index materials embedded one-dimensional photonic crystals

机译:双曲程分级指数材料中的多通道光子带隙工程嵌入式一维光子晶体

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Engineering of multi-channel photonic band gap sensing consequences has been demonstrated in hyperbolic graded index materials embedded one-dimensional (1-D) photonic crystal (PC) in the frequency 150-850 THz region. The multi-channel photonic band gap sensing properties have been investigated by taking into account the reflection and photonic band gap (PBG) spectra of the proposed PC structures. For quarter-wave stacking, we obtain single optical reflection band for band region 646.8 - 434.3 THz with the constituted normal layer refractive index 1.5. Band regions and bandwidths of the single PBG channel can be modulated by changing the refractive index of the constituted normal layer and grading parameter of the hyperbolic graded layer. The number of photonic bands increases with increasing the layer thickness of the GPC structures and leads to work as multi-channel PBG sensors. The operation frequency of the multi-channel PBG sensors can also be tuned by changing the constituted normal layer and grading parameter of the hyperbolic graded layer. These properties lead to design the tunable multi-channel optical sensors/filters engineering. Moreover, the demonstration of the reflection phase shift, group velocity, group delay, and electric field distributions shows the effect of hyperbolic graded index materials on the propagation of light in 1-D PCs. With the engineering of tunable PBGs and structure controllability, hyperbolic graded index materials embedded 1-D PCs provide a promising way to fabricate tunable optical reflectors and multi-channel optical sensors/filters for future optical devices.
机译:在频率150-850THz区域中的双曲分级指数材料嵌入式一维(1-D)光子晶体(PC)中的嵌入式一维(1-D)光子晶体(PC)中已经证明了多通道光子带隙感测后果的工程。通过考虑所提出的PC结构的反射和光子带隙(PBG)光谱,研究了多通道光子带隙感测性能。对于四分之一波堆叠,我们获得带区域646.8-434.3至THz的单光学反射带,具有构成的正常层折射率1.5。通过改变双曲分级层的构成正常层和分级参数的折射率,可以调制单个PBG通道的带区域和带宽。光子带的数量随着GPC结构的层厚度的增加而增加,并导致作为多通道PBG传感器的工作。还可以通过改变双曲分级层的构成正常层和分级参数来调整多通道PBG传感器的操作频率。这些属性导致设计可调式多通道光学传感器/滤波器工程。此外,反射相移,组速度,组延迟和电场分布的证明表明了双曲分级指数材料对1-D PC中光传播的影响。随着可调谐PBG和结构可控性的工程,双曲线分级指数材料嵌入式1-D PCS提供了一种有希望的方法来制造可调光学反射器和用于未来光学器件的多通道光学传感器/过滤器。

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