Center of Excellence for Advanced Materials Research (CEAMR), King Abdulaziz University, Jeddah, 21589, P.O. Box 80203, Saudi Arabia.
Department of Chemistry, Faculty of Science, King Abdulaziz University, Jeddah, 21589, P.O. Box 80203, Saudi Arabia.
Chem Asian J. 2021 Jul 5;16(13):1820-1831. doi: 10.1002/asia.202100370. Epub 2021 Jun 1.
In this investigation, a melamine electrochemical sensor has been developed by using wet-chemically synthesized low-dimensional aggregated nanoparticles (NPs) of ZnO-doped Co O as sensing substrate that were decorated onto flat glassy carbon electrode (GCE). The characterization of NPs such as UV-Vis, FTIR, XRD, XPS, EDS, and FESEM was done for detailed investigations in optical, functional, structural, elemental, and morphological analyses. The ZnO-doped Co O NPs decorated GCE was used as a sensing probe to analyze the target chemical melamine in a phosphate buffer at pH 5.7 by applying differential pulse voltammetry (DPV). It exhibited good performances in terms of sensor analytical parameters such as large linear dynamic range (LDR; 0.15-1.35 mM) of melamine detection, high sensitivity (80.6 μA mM cm ), low limit of detection (LOD; 0.118±0.005 mM), low limit of quantification (LOQ; 0.393 mM), and fast response time (30 s). Besides this, the good reproducibility (in several hours) and repeatability were investigated under identical conditions. Moreover, it was implemented to measure the long-time stability, electron mobility, less charge-transfer resistance, and analyzed diffusion-controlled process for the oxidation reaction of the NPs assembled working GCE electrode, which showed outstanding chemical sensor performances. For validation, real environmental samples were collected from various water sources and investigated successfully with regard to the reliability of the selective melamine detection with prepared NPs coated sensor probe. Therefore, this approach might be introduced as an alternative route in the sensor technology to detect selectively unsafe chemicals by an electrochemical method with nanostructure-doped materials for the safety of environmental, ecological, healthcare fields in a broad scale.
在这项研究中,我们通过使用湿化学合成的 ZnO 掺杂 CoO 的低维聚集纳米粒子(NPs)作为传感基底,制备了一种三聚氰胺电化学传感器,该基底被修饰到平面玻碳电极(GCE)上。我们对 NPs 进行了 UV-Vis、FTIR、XRD、XPS、EDS 和 FESEM 等特性表征,以进行详细的光学、功能、结构、元素和形态分析。将 ZnO 掺杂 CoO NPs 修饰的 GCE 用作传感探针,通过差分脉冲伏安法(DPV)在 pH 5.7 的磷酸盐缓冲液中分析目标化学物质三聚氰胺。它在传感器分析参数方面表现出良好的性能,如三聚氰胺检测的大线性动态范围(LDR;0.15-1.35 mM)、高灵敏度(80.6 μA·mM-1·cm-2)、低检测限(LOD;0.118±0.005 mM)、低定量限(LOQ;0.393 mM)和快速响应时间(30 s)。此外,在相同条件下还研究了几个小时的良好重现性和可重复性。此外,还对组装工作 GCE 电极上的 NPs 氧化反应的电子迁移率、较小的电荷转移电阻和扩散控制过程进行了分析,以研究其长时间稳定性,结果表明 NPs 具有出色的化学传感器性能。为了验证,我们从各种水源中采集了真实的环境样本,并成功地利用制备的 NPs 涂层传感器探针进行了选择性三聚氰胺检测的可靠性研究。因此,这种方法可能会作为一种替代途径引入到传感器技术中,通过电化学方法和掺杂纳米结构的材料来检测不安全的化学物质,从而在广泛的领域内确保环境、生态和医疗保健的安全。