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首页> 外文期刊>Journal of Nanophotonics >Effect of anisotropy on the spectral characteristics of one-dimensional porous silicon photonic crystal microcavity for optical sensing applications
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Effect of anisotropy on the spectral characteristics of one-dimensional porous silicon photonic crystal microcavity for optical sensing applications

机译:各向异性对光学传感应用的一维多孔硅光子晶体微腔光谱特性的影响

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We present a numerical study of the effect of anisotropy on the spectral characteristics of one-dimensional porous silicon microcavity (1D-PSMC) with single defect layer. These structures have strong potential applications in optical sensing of chemicals and bioanalytes. Bruggeman's effective medium approximation (BEMA) and (4 x 4) general transfer matrix method are used for theoretical modeling of spectral response of anisotropic 1D-PSMC. The potential of this structure as a sensing material is illustrated by analyzing wavelength shift in the defect mode induced by infiltration of biochemical analytes of different refractive indices inside the pores. Observed wavelength shift is found to be linearly dependent on the refractive index of analytes. We propose two 1D-PSMC-based sensors with a microcavity wavelength around 800 and 1200 nm. An anisotropic sensor with an operating wavelength around 800 nm shows a maximum sensitivity of 190 while an isotropic sensor with the same design parameters displays a maximum sensitivity of 150. In the case of an anisotropic sensor designed around 1200 nm, the maximum sensitivity is 260; for the isotropic sensor with similar structure, maximum sensitivity of 210 is obtained. Increased sensitivity is observed in anisotropic structures as compared to the isotropic ones. Design parameters play an integral role to obtain desired sensitivity in 1D-PSMC structure for sensor applications. These sensors can be used for high precision optical sensing of chemical-analytes, bioanalytes, gases, and environmental pollutants. (C) 2019 Society of Photo-Optical Instrumentation Engineers (SPIE)
机译:我们在单缺陷层呈现各向异性对一维多孔硅微腔(1D-PSMC)光谱特性的数值研究。这些结构具有强大的潜在应用,用于化学品和生物分析物的光学传感。 Bruggeman的有效媒介近似(BEMA)和(4×4)一般转移矩阵方法用于各向异性1D-PSMC的光谱响应的理论建模。通过分析通过在孔内的不同折射率的不同折射率的生化分析渗透诱导的缺陷模式中的波长偏移来说明这种结构作为传感材料的潜力。发现观察到的波长移位是线性取决于分析物的折射率。我们提出了两个基于1D-PSMC的传感器,微腔波长约为800和1200nm。有约800nm的工作波长的各向异性传感器显示了190的最大灵敏度,而具有相同设计参数的各向同性传感器显示为150的最大灵敏度。在一个左右1200nm的各向异性传感器的情况下,最大灵敏度为260;对于具有相似结构的各向同性传感器,获得210的最大灵敏度。与各向同性的结构相比,在各向异性结构中观察到敏感性增加。设计参数播放积分作用,以获得用于传感器应用的1D-PSMC结构中所需的灵敏度。这些传感器可用于化学分析物,生物分析,气体和环境污染物的高精度光学感测。 (c)2019年光学仪表工程师协会(SPIE)

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