Department of Electro-Optical Engineering, National Taipei University of Technology, Taipei 10608, Taiwan, ROC.
Department of Electro-Optical Engineering, National Taipei University of Technology, Taipei 10608, Taiwan, ROC.
J Hazard Mater. 2021 Jun 15;412:125257. doi: 10.1016/j.jhazmat.2021.125257. Epub 2021 Jan 29.
We report the rational design of nanocomposite with zirconium phosphate encapsulated on graphene oxide (ZrP/GO) for the highly sensitive and selective analysis of fenitrothion (FT). The characteristics of ZrP/GO nanocomposite are systematically analyzed by various in-depth electron microscopic, spectroscopic and analytical techniques. The ZrP/GO nanocomposite modified electrodes show better electrochemical response towards FT than other electrodes. The improved electrochemical activity of nanocomposite is attributed to large surface area, high conductivity, numerous active surface sites, GO nanosheets served as the conductivity matrix while preventing ZrP from agglomeration and the synergistic effect of ZrP and GO. Benefitting from the unique features, our fabricated sensor exhibits the superior performance in terms of wide working range (0.008-26 μM), appropriate peak potential (-0.61 V), low limit of detection (0.001 µM), high sensitivity (6 µA µM cm) with the regression coefficient of 0.999. Additionally, the electrochemical sensor also displays good selectivity, excellent stability (99.6%), reproducibility (4.9%) and reusability (6.1%). The practical applicability of ZrP/GO sensor is shown by performing the detection of FT in water samples. These results clearly suggest that the ZrP/GO nanocomposite is an efficient electrode material for the future real-time environmental monitoring of FT.
我们报告了一种合理设计的纳米复合材料,即磷酸锆封装在氧化石墨烯(ZrP/GO)上,用于高度敏感和选择性地分析杀螟松(FT)。通过各种深入的电子显微镜、光谱和分析技术,系统地分析了 ZrP/GO 纳米复合材料的特性。ZrP/GO 纳米复合材料修饰电极对 FT 表现出比其他电极更好的电化学响应。纳米复合材料电化学活性的提高归因于大的表面积、高导电性、大量的活性表面位点、GO 纳米片作为导电基质,同时防止 ZrP 聚集和 ZrP 和 GO 的协同作用。得益于独特的特性,我们制造的传感器在宽工作范围(0.008-26 μM)、合适的峰电位(-0.61 V)、低检测限(0.001 μM)、高灵敏度(6 μA μM cm,回归系数为 0.999)方面表现出优异的性能。此外,电化学传感器还表现出良好的选择性、出色的稳定性(99.6%)、重现性(4.9%)和可重复性(6.1%)。ZrP/GO 传感器的实际应用通过在水样中进行 FT 的检测得到了证明。这些结果清楚地表明,ZrP/GO 纳米复合材料是未来实时环境监测 FT 的一种有效的电极材料。