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An Integrated Fluorescence Array as a Platform for Lab-on-a-Chip Technology Using Multimode Interference Splitters

机译:集成荧光阵列作为使用多模干扰分离器的芯片实验室技术平台

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摘要

We present the design and fabrication of 1-to-N multimode interference (MMI) splitters, suitable for use in integrated optical fluorescence array sensing, with particular applications in lab-on-a-chip (micro-TAS) technologies. Electron beam irradiation of germanium-doped flame hydrolysis deposited silica was used to define the MMI waveguide regions. The splitters were integrated with microfluidic channels to form direct-excitation fluorescence sensor chips for use at visible wavelengths. Characterization of the waveguides shows that predictable splitting ratios can be achieved. Two devices are presented: a 1 X 2 splitter integrated with one analytical chamber and a 1 X 4 array device for multipoint excitation. A photomultiplier tube was used to assess the analytical performance of the chip, in response to standard aliquots of fluorophore (31 nM to 1.25 (mu)M).
机译:我们介绍了1-to-N多模干涉(MMI)分离器的设计和制造,该分离器适用于集成光学荧光阵列传感,尤其是芯片实验室(micro-TAS)技术中的应用。掺锗的火焰水解沉积二氧化硅的电子束辐照用于定义MMI波导区域。分离器与微流体通道集成在一起,形成直接激发的荧光传感器芯片,用于可见波长。波导的特性表明可以实现可预测的分光比。展示了两种设备:一个集成了一个分析室的1 X 2分离器和一个用于多点激发的1 X 4阵列设备。响应于荧光团的标准等分试样(31 nM至1.25μM),使用光电倍增管评估芯片的分析性能。

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