Double Resonance Characteristic of Photonic Crystal Structure with Defect Metal Layer

Teguh Puja Negara, Sudradjat Supian, Subiyanto, Mohd Kamarulzaki Mustafa
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Abstract

The optical response of the photonic crystal structure has been analyzed using the Finite Difference Frequency Domain (FDFD) method. Simulation using this method aims to analyze the characteristics of light transmission when interacting with related structure. The results of the study of photonic crystal structures with two defects show that there are two transmittance bands called double resonances at two specific wavelengths. Changes in the resonance peak with respect to the variations of refractive index in the second defect layer resulted in a linear change with significant sensitivity. For photonic crystals with two defects, the first defect is a metal layer and the second defect is material sensing, which produces double resonance with a sensitivity of 7,825 and 3,2675, while for photonic crystals with the first defect, a dielectric layer, and the second defect is material sensing, produces single resonance with a sensitivity of 2,022. The choice of the first defect is that the metal layer is quite important, in addition to producing greater sensitivity, it also produces a field enhancement between the dielectric and the metal layer which is called surface plasmon resonance (SPR). The sensitivity value can also be set by determining the thickness of the second defect layer. These results can be used as a standard for fabrication and developed for sensor applications.
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带缺陷金属层的光子晶体结构的双共振特性
利用有限差分频域(FDFD)方法分析了光子晶体结构的光学响应。使用这种方法进行模拟的目的是分析光与相关结构相互作用时的传输特性。对带有两个缺陷的光子晶体结构的研究结果表明,在两个特定波长处存在两个称为双共振的透射带。共振峰的变化与第二个缺陷层的折射率变化有关,导致线性变化,具有显著的灵敏度。对于有两个缺陷的光子晶体,第一个缺陷是金属层,第二个缺陷是材料感应层,产生的双共振灵敏度分别为 7825 和 32675;而对于第一个缺陷是介电层,第二个缺陷是材料感应层的光子晶体,产生的单共振灵敏度为 2022。之所以选择第一个缺陷,是因为金属层相当重要,它除了能产生更高的灵敏度外,还能在介电层和金属层之间产生场增强,这就是所谓的表面等离子体共振(SPR)。灵敏度值也可以通过确定第二个缺陷层的厚度来设定。这些结果可作为制造和开发传感器应用的标准。
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