Biomedical Engineering Research Center , Medical School of Ningbo University , Ningbo , Zhejiang 315211 , P. R. China.
The Affiliated Hospital of Medical School of Ningbo University , Ningbo , Zhejiang 315020 , P. R. China.
Anal Chem. 2019 Oct 15;91(20):13290-13296. doi: 10.1021/acs.analchem.9b04059. Epub 2019 Sep 24.
The application of different sensing principles in microfluidic devices opens up further possibilities for the development of point-of-care testing (POCT). Herein, the photothermal sensing principle is introduced in microfluidic paper-based analytical devices (μPADs) to develop a photothermal microfluidic sensing platform using near-infrared (NIR) laser-driven multiplexed dual-mode visual quantitative readout. Prussian blue (PB) as the analyte-associated photothermal agent was in situ synthesized in thermoresponsive poly(-isopropylacrylamide) hydrogels to serve as the on-chip photothermal sensing element. The NIR laser-driven photothermal effect of PB triggered not only on-chip dose-dependent heat generation but also phase transition-induced dye release from the hydrogels, simultaneously enabling both thermal image- and distance-based dual-mode visual quantitative readout of the analyte concentration in a multiplexed manner. Both the on-chip temperature elevation value of the hydrogels and the traveling distance of released dye solutions were proportional to the concentration of PB. With the detection of silver ions in environmental water as a proof-of-concept study, the photothermal μPAD can detect silver ions at a concentration as low as 0.25 μM with high selectivity and satisfactory accuracy. The photothermal microfluidic sensing platform holds great potential for POCT with promising integratability and broad applicability, owing to the combination of synergistic advantages of the photothermal sensing principle, μPADs, and photothermally responsive hydrogels.
不同传感原理在微流控器件中的应用为即时检测(POCT)的发展开辟了更多的可能性。本文在微流控纸基分析器件(μPADs)中引入光热传感原理,开发了一种基于近红外(NIR)激光驱动的多路复用双模式可视化定量读出的光热微流控传感平台。普鲁士蓝(PB)作为与分析物相关的光热试剂原位合成在热响应性聚(异丙基丙烯酰胺)水凝胶中,用作芯片上的光热传感元件。PB 的 NIR 激光驱动光热效应不仅引发了芯片上剂量依赖性的热产生,而且还引发了水凝胶中染料的相转变释放,从而同时实现了基于热图像和距离的双模式可视化定量读出分析物浓度的多路复用方式。水凝胶的芯片上温度升高值和释放的染料溶液的行进距离都与 PB 的浓度成正比。以环境水中银离子的检测为例,该光热 μPAD 可以检测到低至 0.25 μM 的银离子,具有高选择性和令人满意的准确性。由于光热传感原理、μPADs 和光热响应水凝胶的协同优势相结合,该光热微流控传感平台具有很大的 POCT 应用潜力,具有良好的集成性和广泛的适用性。