Beijing Advanced Innovation Center for Food Nutrition and Human Health, Beijing Engineering and Technology Research Center of Food Additives, Beijing Technology and Business University, 11 Fucheng Road, Beijing 100048, China.
ACS Appl Mater Interfaces. 2020 Jun 3;12(22):25150-25158. doi: 10.1021/acsami.0c04766. Epub 2020 May 26.
High-performance, multiporous imprinted microspheres were prepared from nitrogen-doped carbon dots (N-CDs) using a one-pot reverse microemulsion surface-imprinting method. Here, the N-CDs were exfoliated from a common layer covalent organic framework in a top-down preparation, and an ionic liquid was added to improve the sensitivity and the fluorescence stability. The multiporous imprinted microspheres were successfully applied to flonicamid optosensing in fruits and vegetables with simultaneous analysis of 96 samples by multifunctional enzyme labeling. The fluorescence sensing procedure was performed on recyclable multiporous imprinted microspheres coupling with the interface of N-CDs by taking advantage of the fluorescence-resonance charge-transfer strategy between the N-doped carbon dots and flonicamid molecules, quenching the fluorescence intensity. The multiporous imprinted microspheres exhibited purple fluorescence, which decreased sharply in intensity as the concentration of flonicamid increased. The fluorescence quenching correlation with the concentration of flonicamid showed good linearity in the range of 0.02-0.2 μg g with a detection limit of 0.0059 μg g. This research not only enriches the foundational study of flonicamid residues but also greatly expands the potential applications of multiporous imprinted microspheres for analysis of pesticide residues in agricultural, food, and environmental monitoring.
采用一锅反相微乳液表面印迹法,从氮掺杂碳点(N-CDs)制备了高性能的多孔印迹微球。在这里,N-CDs 是从常见的层状共价有机骨架中自上而下制备的,并添加了离子液体以提高灵敏度和荧光稳定性。多孔印迹微球成功地应用于水果和蔬菜中的氟虫酰胺光检测,并通过多功能酶标记同时分析 96 个样本。荧光传感过程是在可回收的多孔印迹微球上进行的,通过利用 N 掺杂碳点和氟虫酰胺分子之间的荧光共振电荷转移策略,将其与 N-CDs 的界面结合,从而猝灭荧光强度。多孔印迹微球呈现出紫色荧光,随着氟虫酰胺浓度的增加,其荧光强度急剧降低。荧光猝灭与氟虫酰胺浓度的相关性在 0.02-0.2 μg g 范围内表现出良好的线性关系,检测限为 0.0059 μg g。这项研究不仅丰富了氟虫酰胺残留的基础研究,而且极大地扩展了多孔印迹微球在农业、食品和环境监测中分析农药残留的潜在应用。