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On-Chip Photothermal Analyte Detection Using Integrated Luminescent Temperature Sensors

机译:使用集成发光温度传感器进行片上的光热分析物检测

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摘要

Optical absorbance detection based on attenuated light transmission is limited in sensitivity due to short path lengths in microfluidic and other miniaturized platforms. An alternative is detection using the photothermal effect. Herein we introduce a new kind of photothermal absorbance measurement using integrated luminescent temperature sensor spots inside microfluidic channels. The temperature sensors were photopolymerized inside the channels from NOA 81 UV-curable thiolene prepolymer doped with a tris(1,10-phenanthroline)ruthenium(II) temperature probe. The polymerized sensing structures were as small as 26 +/- 3 mu m in diameter and displayed a temperature resolution of better than 0.3 K between 20 and 50 degrees C. The absorbance from 532 nm laser excitation of the food dye Amaranth as a model analyte was quantified using these spots, and the influence of the flow rate, laser power, and concentration was investigated. Calibration yielded a linear relationship between analyte concentration and the temperature signal in the channels. The limit of detection for the azo-dye Amaranth (E123) in this setup was 13 mu M. A minimal detectable absorbance of 3.2 x 10(-3) AU was obtained using an optical path length of 125 mu m in this initial study. A microreactor with integrated temperature sensors was then employed for an absorbance-based miniaturized nitrite analysis, yielding a detection limit of 26 mu M at a total assay time of only 75 s. This technique is very promising for sensitive, and potentially spatially resolved, optical absorbance detection on the micro- and nanoscale.
机译:由于微流体和其他小型平台中的短路长度,基于减毒透射的光学吸光度检测受灵敏度的限制。使用光热效应检测替代方案。这里,我们使用微流体通道内的集成发光温度传感器斑点引入一种新的光热吸收测量。温度传感器在掺杂有Tris(1,10菲咯啉)钌(II)温度探针的NOA 81 UV可固化的硫代烯预聚物的通道内光聚合。聚合的感测结构的直径小于26 +/-3μm,呈现在20至50℃之间的温度分辨率优于0.3k。食品染料Amanth的532nm激光激发的吸光度为模型分析物使用这些斑点量化,研究了流速,激光功率和浓度的影响。校准产生分析物浓度与通道中的温度信号之间的线性关系。在该设置中的偶氮染料苋菜(E123)的检测极限为13μm。在该初始研究中使用125μm的光路长度获得3.2×10(-3)Au的最小可检测吸光度。然后采用具有集成温度传感器的微反应器用于吸光度的小型化亚硝酸盐分析,在仅75秒的总测定时间下产生26μm的检出限。这种技术非常有希望用于敏感,并且潜在的空间地解决,微型和纳米级的光学吸收检测。

著录项

  • 来源
    《Analytical chemistry》 |2017年第17期|共7页
  • 作者

    Pfeiffer Simon A.; Nagl Stefan;

  • 作者单位

    Univ Leipzig Inst Analyt Chem Johannisallee 29 D-04103 Leipzig Germany;

    Univ Leipzig Inst Analyt Chem Johannisallee 29 D-04103 Leipzig Germany;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
  • 关键词

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