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用于同时测定铁、锌和锰离子的三联分析微流控纸基分析装置

A Trianalyte µPAD for Simultaneous Determination of Iron, Zinc, and Manganese Ions.

作者信息

Rozbicka Barbara, Koncki Robert, Fiedoruk-Pogrebniak Marta

机构信息

Faculty of Chemistry, University of Warsaw, Pasteura 1, 02-T093 Warsaw, Poland.

出版信息

Molecules. 2024 Oct 11;29(20):4805. doi: 10.3390/molecules29204805.

Abstract

In this work, a microfluidic paper-based analytical device (µPAD) for simultaneous detection of Fe, Zn, and Mn ions using immobilized chromogenic reagents Ferene S, xylenol orange, and 1-(2-pyridylazo)-2-naphthol, respectively, is presented. As the effective recognition of analytes via respective chromogens takes place under extremely different pH conditions, experiments reported in this publication are focused on optimization of the µPAD architecture allowing for the elimination of potential cross effects. The paper-based microfluidic device was fabricated using low-cost and well-reproducible wax-printing technology. For optical detection of color changes, an ordinary office scanner and self-made RGB-data processing program were applied. Optimized and stable over time, µPADs allow fast, selective, and reproducible multianalyte determinations at submillimolar levels of respective heavy metal ions, which was confirmed by results of the analysis of solutions mimicking real samples of wastewater. The presented concept of simultaneous determination of different analytes that required extremely different conditions for detection can be useful for the development of other multianalyte microfluidic paper-based devices in the µPAD format.

摘要

在本研究中,提出了一种基于微流控纸的分析装置(µPAD),该装置分别使用固定化显色试剂Ferene S、二甲酚橙和1-(2-吡啶偶氮)-2-萘酚同时检测铁、锌和锰离子。由于通过各自的显色剂对分析物进行有效识别是在极其不同的pH条件下进行的,因此本出版物中报道的实验重点是优化µPAD结构,以消除潜在的交叉效应。基于纸的微流控装置采用低成本且可重复的蜡印技术制造。为了对颜色变化进行光学检测,使用了普通办公扫描仪和自制的RGB数据处理程序。µPAD经过优化且随时间稳定,能够在亚毫摩尔水平上对各自的重金属离子进行快速、选择性和可重复的多分析物测定,这一点通过模拟实际废水样品的溶液分析结果得到了证实。所提出的同时测定不同分析物(检测条件差异极大)的概念,对于开发其他µPAD格式的基于微流控纸的多分析物装置可能会有所帮助。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/28b8/11510364/8090e4aabf16/molecules-29-04805-g004.jpg

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