Microfluidics Cluster UPV/EHU, Analytical Microsystems & Materials for Lab-on-a-Chip (AMMa-LOAC), Group, Analytical Chemistry, University of the Basque Country UPV/EHU, Spain; Bioelectronic Systems Technology Group, Department of Chemical Engineering and Biotechnology, Philippa Fawcett Drive, Cambridge, CB3 0AS, UK.
Microfluidics Cluster UPV/EHU, Analytical Microsystems & Materials for Lab-on-a-Chip (AMMa-LOAC), Group, Analytical Chemistry, University of the Basque Country UPV/EHU, Spain; Microfluidics Cluster UPV/EHU, BIOMICs Microfluidics Group, Lascaray Research Center, University of the Basque Country UPV/EHU, Vitoria-Gasteiz, Spain.
Anal Chim Acta. 2021 Nov 22;1186:338392. doi: 10.1016/j.aca.2021.338392. Epub 2021 Mar 13.
Water quality monitoring of drinking, waste, fresh and seawaters is of great importance to ensure safety and wellbeing for humans, fauna and flora. Researchers are developing robust water monitoring microfluidic devices but, the delivery of a cost-effective, commercially available platform has not yet been achieved. Conventional water monitoring is mainly based on laboratory instruments or sophisticated and expensive handheld probes for on-site analysis, both requiring trained personnel and being time-consuming. As an alternative, microfluidics has emerged as a powerful tool with the capacity to replace conventional analytical systems. Nevertheless, microfluidic devices largely use conventional pumps and valves for operation and electronics for sensing, that increment the dimensions and cost of the final platforms, reducing their commercialization perspectives. In this review, we critically analyze the characteristics of conventional microfluidic devices for water monitoring, focusing on different water sources (drinking, waste, fresh and seawaters), and their application in commercial products. Moreover, we introduce the revolutionary concept of using functional materials such as hydrogels, poly(ionic liquid) hydrogels and ionogels as alternatives to conventional fluidic handling and sensing tools, for water monitoring in microfluidic devices.
水质监测对于饮用水、废水、淡水和海水至关重要,这对于人类、动物和植物的安全和健康都非常重要。研究人员正在开发强大的水质监测微流控设备,但尚未实现具有成本效益且可商业化的平台。传统的水质监测主要基于实验室仪器或用于现场分析的复杂且昂贵的手持式探头,这两者都需要经过培训的人员,且耗时较长。作为替代方案,微流控技术已成为一种强大的工具,有能力替代传统的分析系统。然而,微流控设备在很大程度上使用传统的泵和阀来运行,并且使用电子设备进行感测,这增加了最终平台的尺寸和成本,降低了其商业化前景。在这篇综述中,我们批判性地分析了用于水质监测的传统微流控设备的特点,重点介绍了不同的水源(饮用水、废水、淡水和海水),以及它们在商业产品中的应用。此外,我们引入了一个革命性的概念,即将水凝胶、聚(离子液体)水凝胶和离聚凝胶等功能材料用作微流控设备中传统流体处理和感测工具的替代品,用于水质监测。