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Functionalized Photonic Crystal Sensor Elements based on Nanoporous Polymers

机译:基于纳米多孔聚合物的功能化光子晶体传感器元件

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We report the development of oxygen sensors using polymer photonic bandgap structures coupled with complementary metal oxide semiconductor (CMOS) integrated circuit chips. These integrated sensors, exploiting the porous sensing element, provide a new platform for the development of low cost, low powered, light weight, robust, and small sensors. In this paper, we demonstrate an approach to encapsulation of chemical and biological recognition elements within the porous structures. This sensing platform is built on our recently demonstrated nanofabrication technique using holographic interferometry of a photo-activated mixture that includes a volatile solvent as well as monomers, photoinitiators, and co-initiators. The resulting structure is a nanoporous polymer 1D photonic bandgap structure that provides desirable optical reflection. These recognition elements can be directly integrated into optical sensor systems that we have previously developed. The optical sensor system is built using CMOS detectors that include phototransistors, a transimpedance amplifier, and other signal processing units. Specifically, we demonstrate a prototype oxygen sensor by encapsulating the fluorophore (tris(4,7-diphenyl-1,10-phenathroline)ruthenium(II) into the photonic bandgap structure and monitoring the fluorescence intensity.
机译:我们报告了使用聚合物光子带隙结构与互补金属氧化物半导体(CMOS)集成电路芯片结合的氧气传感器的发展。这些集成的传感器利用多孔传感元件,为开发低成本,低功耗,轻便,坚固和小巧的传感器提供了新平台。在本文中,我们演示了一种在多孔结构内封装化学和生物识别元素的方法。该传感平台建立在我们最近展示的纳米加工技术的基础上,该技术利用全息干涉技术对光活化混合物进行了全息照相,该混合物包括挥发性溶剂以及单体,光引发剂和共引发剂。所得结构是提供所需光学反射的纳米多孔聚合物1D光子带隙结构。这些识别元件可以直接集成到我们先前开发的光学传感器系统中。光学传感器系统是使用CMOS检测器构建的,该检测器包括光电晶体管,跨阻放大器和其他信号处理单元。具体来说,我们通过将荧光团(三(4,7-二苯基-1,10-菲咯啉)钌(II))封装到光子带隙结构中并监测荧光强度来演示原型氧传感器。

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