State Key Laboratory for Pollution Control, School of Environmental Science and Engineering, Tongji University, Shanghai 200092, China.
Oral and Dental Disease Research Center, School of Dentistry, Shiraz University of Medical Sciences, Shiraz, Iran.
Environ Res. 2023 Feb 15;219:114995. doi: 10.1016/j.envres.2022.114995. Epub 2022 Dec 15.
A crucial problem that needs to be resolved is the sensitive and selective monitoring of chlorophenol compounds, especifically 4-chlorophenol (4-CP), one of the most frequently used organic industrial chemicals. In light of this, the goal of this study was to synthesize FeO incorporated cellulose nanofiber composite (FeO/CNF) as an amplifier in the development of a modified carbon paste electrode (CPE) for 4-CP detection. Transmission electron microscopy (TEM) was used to evaluate the morphology of the synthesized nanocatalyst, while differential pulse voltammetry (DPV), electrochemical impedance spectroscopy (EIS), and linear sweep voltammetry (LSV) techniques were implemented to illuminate the electrochemical characteristics of the fabricated sensor. The ultimate electrochemical sensor (FeO/CNF/CPE) was used as a potent electrochemical sensor for monitoring 4-CP in the concentration range of 1.0 nM-170 μM with a limit of detection value of 0.5 nM. As a result of optimization studies, 8.0 mg FeO/CNF was found to be the ideal catalyst concentration, whereas pH = 6.0 was chosen as the ideal pH. The 4-CP's oxidation current was found to be over 1.67 times greater at ideal operating conditions than it was at the surface of bare CPE, and its oxidation potential decreased by about 120 mV. By using the standard addition procedure on samples of drinking water and wastewater, the suggested capability of FeO/CNF/CPE to detect 4-CP was further investigated. The recovery range was found to be 98.52-103.66%. This study paves the way for the customization of advanced nanostructure for the application in electrochemical sensors resulting in beneficial environmental impact and enhancing human health.
需要解决的一个关键问题是对氯苯酚化合物,特别是 4-氯苯酚(4-CP)的敏感和选择性监测,4-CP 是最常用的有机工业化学品之一。有鉴于此,本研究的目的是合成 FeO 负载的纤维素纳米纤维复合材料(FeO/CNF)作为放大器,用于开发修饰后的碳糊电极(CPE)以检测 4-CP。透射电子显微镜(TEM)用于评估合成纳米催化剂的形态,而差分脉冲伏安法(DPV)、电化学阻抗谱(EIS)和线性扫描伏安法(LSV)技术则用于说明所制备传感器的电化学特性。最终的电化学传感器(FeO/CNF/CPE)被用作一种强大的电化学传感器,用于在 1.0 nM-170 μM 的浓度范围内监测 4-CP,检测限为 0.5 nM。通过优化研究,发现 8.0 mg FeO/CNF 是理想的催化剂浓度,而 pH=6.0 是理想的 pH 值。在理想的工作条件下,4-CP 的氧化电流比裸 CPE 表面的氧化电流大 1.67 倍以上,其氧化电位降低了约 120 mV。通过在饮用水和废水样品上使用标准添加程序,进一步研究了建议的 FeO/CNF/CPE 检测 4-CP 的能力。发现回收率范围为 98.52-103.66%。本研究为定制先进的纳米结构以应用于电化学传感器铺平了道路,从而产生有益的环境影响并提高人类健康。