State Key Laboratory of Food Nutrition and Safety, Tianjin University of Science and Technology, Tianjin 300457, China.
Tianjin Key Laboratory of Food Science and Health, School of Medicine, Nankai University, Tianjin 300071, China.
J Agric Food Chem. 2022 May 25;70(20):6264-6271. doi: 10.1021/acs.jafc.2c01932. Epub 2022 May 11.
In this study, an electrochemiluminescence detection system for the sensitive detection of carbaryl was constructed based on the dual identification of Eu@MOF253, which has a recognition effect on carbaryl, and the electrochemiluminescence system of Ru(bpy)/SO, which can react with carbaryl in a redox reaction. This method not only overcame the weakness of the electrochemiluminescence instability of the Ru(bpy)/SO system but also changed the sensitivity of the sensing detection system to the target by adjusting the concentration of Ru(bpy) and then proposed a detection strategy with a controllable detection range. After analyzing the electrochemiluminescence signal change mechanism of this system and optimizing the detection conditions, it was concluded that the strategy has good linear detection of carbaryl in the range of 1-1000 and 0.02-0.3 μg L, and the detection limits were 0.058 and 0.014 μg L. Finally, the strategy was also successfully applied to the detection of actual samples.
在本研究中,构建了基于 Eu@MOF253 对甲萘威的双重识别和 Ru(bpy)/SO 的电致化学发光体系的电致化学发光检测系统,Ru(bpy)/SO 可与甲萘威发生氧化还原反应。该方法不仅克服了 Ru(bpy)/SO 体系电致化学发光不稳定的弱点,而且通过调节 Ru(bpy)的浓度改变了传感检测系统对目标的灵敏度,从而提出了一种具有可控检测范围的检测策略。通过分析该体系的电致化学发光信号变化机制并优化检测条件,得出该策略对甲萘威在 1-1000 和 0.02-0.3 μg·L 范围内具有良好的线性检测,检测限分别为 0.058 和 0.014 μg·L。最后,该策略还成功应用于实际样品的检测。