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基于双微结构辅助反应器的便携式芯片实验室快速硝酸盐检测。

Rapid nitrate determination with a portable lab-on-chip device based on double microstructured assisted reactors.

机构信息

Key Laboratory of Artificial Micro- and Nano-Structures of Ministry of Education, School of Physics & technology, Wuhan University, Wuhan 430072, China.

出版信息

Lab Chip. 2021 Mar 21;21(6):1109-1117. doi: 10.1039/d0lc01057j. Epub 2021 Feb 2.

Abstract

Determining the nitrate levels is critical for water quality monitoring, and traditional methods are limited by high toxicity and low detection efficiency. Here, rapid nitrate determination was realized using a portable device based on innovative three-dimensional double microstructured assisted reactors (DMARs). On-chip nitrate reduction and chromogenic reaction were conducted in the DMARs, and the reaction products then flowed into a PMMA optical detection chip for absorbance measurement. A significant enhancement of reaction rate and efficiency was observed in the DMARs due to their sizeable surface-area-to-volume ratios and hydrodynamics in the microchannels. The highest reduction ratio of 94.8% was realized by optimizing experimental parameters, which is greatly improved compared to conventional zinc-cadmium based approaches. Besides, modular optical detection improves the reliability of the portable device, and a smartphone was used to achieve a portable and convenient nitrate analysis. Different water samples were successfully analysed using the portable device based on DMARs. The results demonstrated that the device features fast detection (115 s per sample), low reagent consumptions (26.8 μL per sample), particularly low consumptions of toxic reagents (0.38 μL per sample), good reproducibility and low relative standard deviations (RSDs, 0.5-1.38%). Predictably, the portable lab-on-chip device based on microstructured assisted reactors will find more applications in the field of water quality monitoring in the near future.

摘要

测定硝酸盐水平对于水质监测至关重要,而传统方法受到高毒性和低检测效率的限制。在此,我们使用基于创新的三维双微结构辅助反应器(DMARs)的便携式设备实现了快速硝酸盐测定。在 DMARs 中进行了芯片上的硝酸盐还原和显色反应,然后将反应产物流入 PMMA 光学检测芯片进行吸光度测量。由于其较大的表面积与体积比和微通道中的流体动力学,DMARs 中观察到反应速率和效率的显著提高。通过优化实验参数,实现了 94.8%的最高还原比,与传统的锌镉基方法相比有了很大的提高。此外,模块化光学检测提高了便携式设备的可靠性,智能手机的使用实现了便携式和便捷的硝酸盐分析。使用基于 DMARs 的便携式设备成功分析了不同的水样。结果表明,该设备具有快速检测(每个样品 115 秒)、低试剂消耗(每个样品 26.8 μL)、特别是低毒性试剂消耗(每个样品 0.38 μL)、良好的重现性和低相对标准偏差(RSD,0.5-1.38%)的特点。可以预见,基于微结构辅助反应器的便携式微流控芯片实验室设备将在不久的将来在水质监测领域得到更广泛的应用。

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