用于光学检测的微加工聚合物分析芯片。

M Fleger, D Siepe, A Neyer
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引用次数: 13

摘要

成功实现了用于光学分析的聚甲基丙烯酸甲酯(PMMA)毛细管电泳(CE)芯片上多模聚合物波导与微流控通道的耦合。该技术允许将聚合物光波导与密封流体通道集成在一起。微通道和波导采用经批准的热压印技术在PMMA中制造。在微流控芯片上制备聚合物波导的技术为聚合物波导芯材的选择、设计和排列提供了极大的灵活性。聚合物波导在分析芯片上的集成使高空间分辨率的光学检测无需大型和昂贵的传统设备。通过传输损耗和传播损耗测量,验证了所开发的分析系统的光学特性。测量结果证明了该器件适用于440 ~ 800 nm的光学应用。这是用染料磺胺偶氮显色剂(SPADNS)在50微米流体通道内的吸光度测量显示的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microfabricated polymer analysis chip for optical detection.

A coupling between multimode polymer waveguides and microfluidic channels on a polymethylmethacrylate (PMMA) capillary electrophoresis (CE)-chip for optical analytical applications has been successfully realised. This technology allows the integration of polymer optical waveguides together with hermetically sealed fluidic channels. The microchannels and waveguides are made in PMMA by the approved hot-embossing technology. The technology developed for the fabrication of polymer waveguides on the microfluidic chip offers the possibility of great flexibility in the choice of core materials, design and alignment of the polymer waveguides. The integration of polymer waveguides on an analysis chip enables highly spatially resolved optical detection without the large and expensive conventionally used apparatus. The optical properties of the analytical system developed are verified by transmission and propagation loss measurements. The results of measurements prove the suitability of the presented device for optical applications between 440 and 800 nm. This was shown with absorbance measurements of the dye Sulfanilazochromotrop (SPADNS) within 50 microm fluidic channels.

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