微流控
微尺度化学
吞吐量
探测器
材料科学
镜头(地质)
光电子学
纳米技术
实现(概率)
频道(广播)
荧光
光学
计算机科学
物理
电信
数学教育
统计
无线
数学
作者
Xiaobao Cao,Ying Du,Andreas M. Küffner,Jordan Van Wyk,Paolo Arosio,Jing Wang,Peter Fischer,Stavros Stavrakis,Andrew J. deMello
出处
期刊:Small
[Wiley]
日期:2020-04-20
卷期号:16 (20)
被引量:18
标识
DOI:10.1002/smll.201907534
摘要
Abstract Fluorescence‐based detection schemes provide for multiparameter analysis in a broad range of applications in the chemical and biological sciences. Toward the realization of fully portable analysis systems, microfluidic devices integrating diverse functional components have been implemented in a range of out‐of‐lab environments. That said, there still exits an unmet and recognized need for miniaturized, low‐cost, and sensitive optical detection systems, which provide not only for efficient molecular excitation, but also enhanced photon collection capabilities. To this end, an optofluidic platform that is adept at enhancing fluorescence light collection from microfluidic channels is presented. The central component of the detection module is a monolithic parabolic mirror located directly above the microfluidic channel, which acts to enhance the number of emitted photons reflected toward the detector. In addition, two‐photon polymerization is used to print a microscale‐lens below the microfluidic flow channel and directly opposite the mirror, to enhance the delivery of excitation radiation into the channel. Using such an approach, it is demonstrated that fluorescence signals can be enhanced by over two orders of magnitude, with component parallelization enabling the detection of pL‐volume droplets at rates up to 40 000 droplets per second.
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