Study of photonic crystal cavities for biosensors

M. Nguyen, Ming-Chang M. Lee, F. Tseng
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引用次数: 9

Abstract

A highly sensitive biosensor based on a silicon photonic crystal waveguide incorporating microcavities is investigated using two-dimensional Finite Difference Time Domain method. With a microcavity placed near the waveguide, a dip is observed on the waveguide transmission spectrum, corresponding to the resonance wavelength of the cavity. Any change of the medium surrounding to the waveguide and cavity results in the shift of the dip in the transmission spectrum. Our simulation shows an optimal geometry of the cavity nearby the waveguide to have high sensitivity. Several materials with refractive indices ranging from 1 (the air) to 1.57 (Bovine serum albumin - BSA) were studied and showed that the best sensitivity of 194 nm/RIU and limit of detection of 5×10−5 RIU can be achieved. The varied resonance wavelength as a second-order polynomial function of refractive index was observed. The sensor is appropriate for detecting homogeneous medium.
生物传感器用光子晶体腔的研究
采用二维时域有限差分方法研究了一种基于硅光子晶体波导的高灵敏度微腔生物传感器。在波导附近放置一个微腔,观察到波导透射谱上有一个倾角,对应于该微腔的共振波长。波导和腔体周围介质的任何变化都会引起透射谱倾角的偏移。我们的模拟显示了波导附近的腔体具有高灵敏度的最佳几何形状。对折射率为1(空气)~ 1.57(牛血清白蛋白- BSA)的几种材料进行了研究,结果表明,该方法的最佳灵敏度为194 nm/RIU,检测限为5×10−5 RIU。观察到共振波长随折射率的二阶多项式函数的变化。该传感器适用于检测均质介质。
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