Electroanalysis and Bioelectrochemistry Lab, Department of Chemical Engineering and Biotechnology, National Taipei University of Technology, No. 1, Section 3, Chung-Hsiao East Road, Taipei 106, Taiwan, ROC.
Electroanalysis and Bioelectrochemistry Lab, Department of Chemical Engineering and Biotechnology, National Taipei University of Technology, No. 1, Section 3, Chung-Hsiao East Road, Taipei 106, Taiwan, ROC.
Ecotoxicol Environ Saf. 2021 Feb;209:111828. doi: 10.1016/j.ecoenv.2020.111828. Epub 2020 Dec 29.
Herein, we fabricated a feasible and accurate sensing platform for the quantification of toxic organic pollutant 2-nitroaniline (2-NA) in water samples through electrocatalyst made up of bismuth molybdate (BiMoO, BMO) functionalized carbon nanofiber (f-CNF) modified electrode. The preparation of BMO/f-CNF composite is of two methods, such as co-precipitation (C-BMO/f-CNF) and ultrasonication method (U-BMO/f-CNF). The physicochemical properties of the composites were characterized by XRD, FTIR, Raman, BET, FE-SEM, and HR-TEM techniques. At U-BMO/f-CNF, the charge transfer resistance was low (R = 12.47 Ω) compared to C-BMO/f-CNF because nanosized U-BMO particles correctly aim at the defective sites of the f-CNF surface wall. Further, the electrocatalytic activity of C&U-BMO/f-CNF composites was examined by cyclic voltammetry (CV) and differential pulse voltammetry techniques (DPV) for the electrochemical detection of 2-nitroaniline (2-NA). The U-BMO/f-CNF/GCE shows a higher cathodic current, wide dynamic linear range of 0.01-168.01 µM, and superior electrocatalytic activity with a low detection limit (0.0437 µM) and good sensitivity (0.6857 μA μM cm). The excellent selectivity nature of U-BMO/f-CNF/GCE was observed in the presence of various organic pollutants and a few toxic metal cations. The practical applicability such as stability, repeatability towards 2-NA outcomes with accepted results. Besides, the practical viability of as proposed U-BMO/f-CNF sensor was investigated in soil and lake water samples delivers good recovery results. Hence from these analyses, we conclude that U-BMO/f-CNF/GCE potential for the determination of hazardous environmental pollutant 2-NA.
在此,我们通过由钼酸铋(BiMoO,BMO)功能化碳纳米纤维(f-CNF)修饰电极制成的电催化剂,制造了一种可行且准确的传感平台,用于定量水样中的有毒有机污染物 2-硝基苯胺(2-NA)。BMO/f-CNF 复合材料的制备有两种方法,如共沉淀(C-BMO/f-CNF)和超声法(U-BMO/f-CNF)。通过 XRD、FTIR、拉曼、BET、FE-SEM 和 HR-TEM 技术对复合材料的物理化学性质进行了表征。在 U-BMO/f-CNF 中,与 C-BMO/f-CNF 相比,电荷转移电阻较低(R = 12.47 Ω),因为纳米尺寸的 U-BMO 颗粒正确地针对 f-CNF 表面壁的缺陷部位。此外,通过循环伏安法(CV)和差分脉冲伏安法(DPV)技术对 C 和 U-BMO/f-CNF 复合材料的电催化活性进行了测试,用于电化学检测 2-硝基苯胺(2-NA)。U-BMO/f-CNF/GCE 显示出更高的阴极电流、更宽的动态线性范围(0.01-168.01 µM)和更高的电催化活性,检测限低(0.0437 µM),灵敏度高(0.6857 μA μM cm)。在存在各种有机污染物和少量有毒金属阳离子的情况下,观察到 U-BMO/f-CNF/GCE 具有优异的选择性。U-BMO/f-CNF 传感器在 2-NA 结果的稳定性、重复性方面具有良好的实际适用性,结果令人满意。此外,在所提出的 U-BMO/f-CNF 传感器在土壤和湖水样品中的实际可行性进行了研究,结果表明回收率良好。因此,从这些分析中,我们得出结论,U-BMO/f-CNF/GCE 可用于测定环境中有害污染物 2-NA。