Ferro Érica Castro, Cardoso Claudia A L, Arruda Gilberto J
a Chemistry Program, Universidade Estadual de Mato Grosso do Sul , Dourados , MS , Brazil.
J Environ Sci Health B. 2017 Oct 3;52(10):762-769. doi: 10.1080/03601234.2017.1356679.
This study describes a novel electrochemical method to determine the herbicide trifluralin in samples of water, fruit juice, and vegetable extracts in the presence of surfactants, using a glassy carbon electrode (GCE). In acidic media, trifluralin was irreversible on the glassy carbon electrode surface at -0.5 V vs. Ag/AgCl. Surfactant presence on the electrode-solution interface modified current intensities and shifted the reduction peak potential of trifluralin. Different types of surfactant and their concentrations were investigated. The anionic surfactant significantly enhanced the peak current intensity of trifluralin. Under optimal analytical conditions, an analytical curve was obtained in the concentration range of 0.48-32.20 µM. The limits of detection and quantification were estimated at 0.031 and 0.104 µM, respectively. The method was successfully applied to quantify trifluralin in samples of water, orange and tomato juice, and green pepper, carrot, and onion extracts, with recovery rates of 97.9-102.1%. The results were in good agreement with those obtained using high-performance liquid chromatography, indicating that the proposed electrochemical method can be employed to quantify trifluralin in various types foods, with sensitivity, specificity, selectivity and reproducibility.
本研究描述了一种新颖的电化学方法,该方法使用玻碳电极(GCE),在表面活性剂存在的情况下测定水、果汁和蔬菜提取物样品中的除草剂氟乐灵。在酸性介质中,相对于Ag/AgCl,氟乐灵在玻碳电极表面于-0.5 V处发生不可逆反应。电极-溶液界面上表面活性剂的存在改变了电流强度,并使氟乐灵的还原峰电位发生偏移。研究了不同类型的表面活性剂及其浓度。阴离子表面活性剂显著增强了氟乐灵的峰电流强度。在最佳分析条件下,获得了浓度范围为0.48 - 32.20 µM的分析曲线。检测限和定量限分别估计为0.031和0.104 µM。该方法成功应用于定量水、橙汁和番茄汁以及青椒、胡萝卜和洋葱提取物样品中的氟乐灵,回收率为97.9 - 102.1%。结果与使用高效液相色谱法获得的结果高度一致,表明所提出的电化学方法可用于定量各种类型食品中的氟乐灵,具有灵敏度、特异性、选择性和重现性。