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Resonant tunneling properties of photonic crystals consisting of single-negative materials

机译:由单负材料组成的光子晶体的共振隧穿特性

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摘要

We studied the resonant tunneling properties of one-dimensional photonic crystals consisting of single-negative permittivity and single-negative permeability media using transfer matrix methods. The results show that there exists a pair of resonant tunneling modes in this structure. The separation of the pair of tunneling modes can be tuned by varying the ratio of thicknesses of the two single-negative layers or the thickness of the defect layer. The electric field intensity of the resonant tunneling modes increases rapidly with the increase of the ratio of thicknesses of the two single-negative layers. The peak value of the field intensity of the resonant tunneling modes is enhanced by one order of magnitude when the ratio of thicknesses of the two single-negative layers increases by 0.4. This property will be applied widely in the field of nonlinearity optics. With the increase of the ratio of thicknesses of the two single-negative layers, the electric field of the tunneling modes becomes more localized, and the full width at half maximum of the tunneling modes becomes narrower. Besides, the pair of tunneling modes is insensitive to incident angle and thickness fluctuation. These properties will be used for the design of tunable omnidirectional double-channel filter with high quality factor.
机译:我们使用转移矩阵方法研究了由单负介电常数和单负磁导率介质组成的一维光子晶体的共振隧穿性质。结果表明,该结构中存在一对共振隧穿模式。可以通过改变两个单负层的厚度比或缺陷层的厚度来调整成对的隧穿模式的间隔。共振隧穿模式的电场强度随着两个单负层的厚度比的增加而迅速增加。当两个单负层的厚度之比增加0.4时,共振隧穿模式的场强度的峰值增加一个数量级。该特性将在非线性光学领域得到广泛应用。随着两个单负层的厚度比的增加,隧道模式的电场变得更加局部化,并且隧道模式的半峰全宽变得更窄。此外,这对隧穿模式对入射角和厚度波动不敏感。这些特性将用于设计具有高质量因数的可调谐全向双通道滤波器。

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