Yebo Nebiyu A, Lommens Petra, Hens Zeger, Baets Roel
Ghent University-IMEC, Photonics Research Group, INTEC, Sint-Pietersnieuwstraat 41, 9000 Gent, Belgium.
Opt Express. 2010 May 24;18(11):11859-66. doi: 10.1364/OE.18.011859.
Optical structures fabricated on silicon-on-insulator technology provide a convenient platform for the implementation of highly compact, versatile and low cost devices. In this work, we demonstrate the promise of this technology for integrated low power and low cost optical gas sensing. A room temperature ethanol vapor sensor is demonstrated using a ZnO nanoparticle film as a coating on an SOI micro-ring resonator of 5 microm in radius. The local coating on the ring resonators is prepared from colloidal suspensions of ZnO nanoparticles of around 3 nm diameter. The porous nature of the coating provides a large surface area for gas adsorption. The ZnO refractive index change upon vapor adsorption shifts the microring resonance through evanescent field interaction. Ethanol vapor concentrations down to 100 ppm are detected with this sensing configuration and a detection limit below 25 ppm is estimated.
基于绝缘体上硅技术制造的光学结构为实现高度紧凑、多功能且低成本的器件提供了一个便利的平台。在这项工作中,我们展示了该技术在集成低功耗和低成本光学气体传感方面的前景。利用半径为5微米的绝缘体上硅微环谐振器上的氧化锌纳米颗粒薄膜作为涂层,演示了一种室温乙醇蒸汽传感器。环形谐振器上的局部涂层由直径约3纳米的氧化锌纳米颗粒的胶体悬浮液制备而成。涂层的多孔性质为气体吸附提供了大的表面积。蒸汽吸附时氧化锌折射率的变化通过倏逝场相互作用使微环谐振发生偏移。利用这种传感配置可检测低至100 ppm的乙醇蒸汽浓度,估计检测限低于25 ppm。