Key Laboratory of Interfacial Reaction & Sensing Analysis in Universities of Shandong, School of Chemistry and Chemical Engineering, School of Biological Science and Technology, University of Jinan, Jinan, 250022, PR China.
Key Laboratory of Interfacial Reaction & Sensing Analysis in Universities of Shandong, School of Chemistry and Chemical Engineering, School of Biological Science and Technology, University of Jinan, Jinan, 250022, PR China.
Anal Chim Acta. 2022 Oct 16;1230:340364. doi: 10.1016/j.aca.2022.340364. Epub 2022 Sep 8.
In this work, a multiplexed electrochemical aptasensor based on mixed valence Ce-MOF was constructed for the simultaneous determination of malathion and chlorpyrifos. Firstly, Ce(III, IV)-MOF materials with many catalytic sites were synthesized and characterized by SEM, TEM, XPS, FT-IR, XRD, and UV-Vis. Then, the chlorpyrifos and malathion signal markers based on Ce(III, IV)-MOF were prepared using thionine (Thi) and ferrocene (Fc) used as the electrochemical probe. The electrochemical signal was amplified by the reduction of thionine catalyzed by the spontaneous cycle of Ce(III, IV) in Ce(III, IV)-MOF skeleton and the reduction of ferrocene catalyzed by ascorbic acid (AA) in solution. The detection of the two targets did not interfere with each other, and the quantitative detection was realized with high sensitivity. The detection range of chlorpyrifos and malathion were 1.0 μM ∼ 0.1 pM, and the detection limits of chlorpyrifos and malathion were 0.038 and 0.045 pM (S/N = 3), respectively. The sensor provided a new idea for the simultaneous determination of multi-component and had a high application prospect in the field of food safety in the future.
在这项工作中,构建了一种基于混合价态 Ce-MOF 的多重电化学生物传感器,用于同时测定马拉硫磷和毒死蜱。首先,通过 SEM、TEM、XPS、FT-IR、XRD 和 UV-Vis 对具有许多催化位点的 Ce(III, IV)-MOF 材料进行了合成和表征。然后,以硫堇 (Thi) 和二茂铁 (Fc) 为电化学探针,制备了基于 Ce(III, IV)-MOF 的毒死蜱和马拉硫磷信号标记物。通过 Ce(III, IV)-MOF 骨架中 Ce(III, IV)的自发循环催化硫堇的还原和溶液中抗坏血酸 (AA) 催化二茂铁的还原来放大电化学信号。两种目标物的检测互不干扰,实现了高灵敏度的定量检测。毒死蜱和马拉硫磷的检测范围分别为 1.0 μM∼0.1 pM,毒死蜱和马拉硫磷的检测限分别为 0.038 和 0.045 pM(S/N=3)。该传感器为多组分同时测定提供了新思路,在未来食品安全领域具有广阔的应用前景。