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首页> 外文期刊>Talanta: The International Journal of Pure and Applied Analytical Chemistry >Probing trace Hg~(2+) in a microfluidic chip coupled with in situ near-infrared fluorescence detection
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Probing trace Hg~(2+) in a microfluidic chip coupled with in situ near-infrared fluorescence detection

机译:在微流控芯片中探测痕量Hg〜(2+)并结合原位近红外荧光检测

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摘要

A novel microfluidic chip coupled with near-infrared (NIR) fluorescence detection set-up was established for specific analysis of trace Hg~(2+). Based on the NIR fluorescence changes caused by Hg~(2+)-induced dissolution and aggregation of label-free single-strand DNA (ssDNA) wrapped single-walled carbon nanotubes (SWNTs), Hg~(2+) in aqueous solution were detected sensitively and specifically in the microfluidic chips system. Due to the small device dimension effect as well as the high efficiency of microfluidic chips, the reagent volume reduced from 500 μL to 9 μL and the minimum reaction time reaching the plateau was shortened from 60 min to 30 min, while the detection limit for Hg~(2+) decreased from 10.5 nM to 1.5 nM, compared with that of measured in regular Eppendorf tube. The idea of detecting NIR fluorescence spectra in microfluidic systems opens new avenues to optical analysis and bioassays in probing trace species.
机译:建立了一种新型的微流控芯片,结合近红外(NIR)荧光检测装置,用于痕量汞(2+)的特异性分析。基于Hg〜(2+)诱导的无标记单链DNA(ssDNA)包裹的单壁碳纳米管(SWNTs)溶解和聚集所引起的NIR荧光变化,得出水溶液中的Hg〜(2+)可以在微流控芯片系统中灵敏地检测到。由于装置尺寸的影响以及微流控芯片的高效率,试剂体积从500μL减少至9μL,到达稳定平台的最小反应时间从60 min缩短至30 min,而Hg的检测极限与常规Eppendorf管中的测量值相比,〜(2+)从10.5 nM降低到1.5 nM。在微流体系统中检测NIR荧光光谱的想法为探测痕量物种的光学分析和生物测定开辟了新途径。

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