Integrated optical chemical sensor using a dispersion-guided photonic crystal structure

Richard K. Martin, A. Sharkawy, J. Humphrey, E. Kelmelis, D. Prather
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引用次数: 6

Abstract

There is a growing need for miniature low-cost chemical sensors for use in monitoring environmental conditions. Applications range from environmental pollution monitoring, industrial process control and homeland security threat detection to biomedical diagnostics. Integrated opto-chemical sensors can provide the required functionality by monitoring chemistry induced changes in the refractive, absorptive, or luminescent properties of materials. Mach-Zehnder (MZ) interferometers, using the phase induced from a chemically reactive film, have shown success for such applications but typically are limited to one chemical analysis per sensor. In this paper we present a MZ-like sensor using the dispersion properties of a photonic crystal lattice. Properly engineered dispersion guiding enables the creation of multiple parallel MZ-like sensors monitoring different chemical reactions in a device much smaller than a typical MZ sensor. The phase shift induced in one arm of the photonic crystal structure by the chemical reaction of a special film induces a change in the sensor output. The use of a dispersion guiding photonic crystal structure enables the use of lower refractive index materials because the creation of a bandgap is not necessary. This in turn increases coupling efficiency into the device. Other advantages of this type of structure include the ability to guide both TE and TM modes as well as reduced sensitivity to fabrication tolerances. Two-dimensional FDTD analysis is used to optimize and model the effectiveness of the structure.
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采用色散引导光子晶体结构的集成光学化学传感器
对用于监测环境条件的微型低成本化学传感器的需求日益增长。应用范围从环境污染监测、工业过程控制、国土安全威胁检测到生物医学诊断。集成的光化学传感器可以通过监测材料的折射、吸收或发光特性的化学变化来提供所需的功能。Mach-Zehnder (MZ)干涉仪使用化学反应膜诱导的相位,在此类应用中取得了成功,但通常限于每个传感器进行一次化学分析。本文提出了一种利用光子晶格色散特性的类mz传感器。适当设计的分散引导可以创建多个平行的MZ类传感器,在一个比典型MZ传感器小得多的设备中监测不同的化学反应。特殊薄膜的化学反应在光子晶体结构的一个臂上引起相移,引起传感器输出的变化。色散引导光子晶体结构的使用使得低折射率材料的使用成为可能,因为不需要产生带隙。这反过来又增加了器件的耦合效率。这种结构的其他优点包括能够引导TE和TM模式,以及降低对制造公差的敏感性。利用二维时域有限差分法对结构的有效性进行了优化和建模。
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