Santos Anderson M, Wong Ademar, Prado Thiago M, Fava Elson L, Fatibello-Filho Orlando, Sotomayor Maria D P T, Moraes Fernando C
Department of Chemistry, Federal University of São Carlos, Rod. Washington Luís km 235, P. O. Box 676, 13560-970, São Carlos, SP, Brazil.
Department of Chemistry, Federal University of São Carlos, Rod. Washington Luís km 235, P. O. Box 676, 13560-970, São Carlos, SP, Brazil; Department of Analytical Chemistry, Institute of Chemistry, State University of São Paulo and INCT-DATREM, 14801-970, Araraquara, SP, Brazil.
Talanta. 2021 Mar 1;224:121804. doi: 10.1016/j.talanta.2020.121804. Epub 2020 Oct 23.
The present work reports the development of a sensitive and selective method for ethinylestradiol detection using screen-printed electrode (SPE) modified with functionalized graphene (FG), graphene quantum dots (GQDs) and magnetic nanoparticles coated with molecularly imprinted polymers (mag@MIP). The performance of the mag@MIP sensor was compared with that of a non-molecularly imprinted sensor (mag@NIP). Chemical and physical characterizations of the mag@NIP and mag@MIP sensors were performed using scanning electron microscopy (SEM), energy dispersive X-ray spectroscopy (EDS) and Brunauer-Emmett-Teller (BET) techniques. The electrochemical behavior of the electrodes investigated, which included (mag@MIP)-GQDs-FG-NF/SPE, (mag@NIP)-GQDs-FG-NF/SPE, GQDs-FG-NF/SPE and FG-NF/SPE, was evaluated by cyclic voltammetry. The results obtained show a significant increase in peak current magnitude for (mag@MIP)-GQDs-FG-NF/SPE. Using square wave voltammetry experiments, the efficiency of the (mag@MIP)-GQDs-FG-NF/SPE sensor was also tested under optimized conditions. The linear response range obtained for ethinylestradiol concentration was 10 nmol L to 2.5 μmol L, with limit of detection of 2.6 nmol L. The analytical signal of the (mag@MIP)-GQDs-FG-NF/SPE sensor suffered no interference from different compounds and the sensor exhibited good repeatability. The proposed sensor was successfully applied for ethynilestradiol detection in river water, serum and urine samples, where recovery rates between 96 to 105% and 97-104% were obtained for environmental and biological samples, respectively.
本研究报告了一种灵敏且具选择性的乙炔雌二醇检测方法的开发,该方法采用了功能化石墨烯(FG)、石墨烯量子点(GQDs)和包覆分子印迹聚合物的磁性纳米颗粒(mag@MIP)修饰的丝网印刷电极(SPE)。将mag@MIP传感器的性能与非分子印迹传感器(mag@NIP)进行了比较。使用扫描电子显微镜(SEM)、能量色散X射线光谱(EDS)和布鲁诺尔-埃米特-特勒(BET)技术对mag@NIP和mag@MIP传感器进行了化学和物理表征。通过循环伏安法评估了所研究电极的电化学行为,这些电极包括(mag@MIP)-GQDs-FG-NF/SPE、(mag@NIP)-GQDs-FG-NF/SPE、GQDs-FG-NF/SPE和FG-NF/SPE。所得结果表明,(mag@MIP)-GQDs-FG-NF/SPE的峰值电流幅度显著增加。使用方波伏安法实验,还在优化条件下测试了(mag@MIP)-GQDs-FG-NF/SPE传感器的效率。所获得的乙炔雌二醇浓度线性响应范围为10 nmol/L至2.5 μmol/L,检测限为2.6 nmol/L。(mag@MIP)-GQDs-FG-NF/SPE传感器的分析信号不受不同化合物的干扰,且该传感器具有良好的重复性。所提出的传感器成功应用于河水、血清和尿液样本中乙炔雌二醇的检测,环境样本和生物样本的回收率分别为96%至105%和97%至104%。