Nguyen Vu Bao Chau, Reut Jekaterina, Rappich Jörg, Hinrichs Karsten, Syritski Vitali
Department of Materials and Environmental Technology, Tallinn University of Technology, Ehitajate tee 5, 19086 Tallinn, Estonia.
Young Investigator Group Nanoscale Solid-Liquid Interfaces, Helmholtz-Zentrum Berlin für Materialien und Energie GmbH, Schwarzschildstr. 8, 12489 Berlin, Germany.
Polymers (Basel). 2024 May 14;16(10):1394. doi: 10.3390/polym16101394.
This work presents an electrochemical sensor detecting a fungicide-azoxystrobin (AZO) in aqueous environments. This AZO sensor utilizes a thin-film metal electrode (TFME) combined with an AZO-selective molecularly imprinted polymer (AZO-MIP). The AZO-MIP was directly generated on TFME through electrochemical polymerization from the solution containing two functional monomers: aniline (Ani) and m-phenylenediamine (mPD), and the template: AZO, which was afterwards removed to form AZO-selective cavities in the polymer matrix. The AZO-MIP preparation was characterized by electrochemical and ellipsometry measurements. Optimization of the synthesis parameters, including the charge density applied during electrodeposition, the monomer-to-template ratio, was performed to enhance the sensor's performance. The results demonstrated that the AZO sensor achieved a low limit of detection (LOD) of 3.6 nM and a limit of quantification (LOQ) of 11.8 nM in tap water, indicating its sensitivity in a complex aqueous environment. The sensor also exhibited satisfactory selectivity for AZO in both ultrapure and tap-water samples and achieved a good recovery (94-119%) for the target analyte. This study highlights the potential of MIP-based electrochemical sensors for the rapid and accurate detection of fungicide contaminants in water, contributing to the advancement of analytical tools for water-quality monitoring and risk assessment.
这项工作展示了一种用于检测水环境中杀菌剂嘧菌酯(AZO)的电化学传感器。该AZO传感器利用薄膜金属电极(TFME)与AZO选择性分子印迹聚合物(AZO-MIP)相结合。通过电化学聚合,从含有两种功能单体:苯胺(Ani)和间苯二胺(mPD)以及模板:AZO的溶液中,在TFME上直接生成AZO-MIP,随后去除模板以在聚合物基质中形成AZO选择性空腔。通过电化学和椭偏测量对AZO-MIP的制备进行了表征。对合成参数进行了优化,包括电沉积过程中施加的电荷密度、单体与模板的比例,以提高传感器的性能。结果表明,该AZO传感器在自来水中实现了3.6 nM的低检测限(LOD)和11.8 nM的定量限(LOQ),表明其在复杂水环境中的灵敏度。该传感器在超纯水和自来水样品中对AZO也表现出令人满意的选择性,并且对目标分析物实现了良好的回收率(94-119%)。这项研究突出了基于MIP的电化学传感器在快速准确检测水中杀菌剂污染物方面的潜力,有助于水质监测和风险评估分析工具的进步。