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基于能量转移与电子转移偶联的双重机制猝灭电化学发光体系用于基于竞争性适配体的食品中环戊基芬太尼的灵敏检测。

Dual-Mechanism Quenching Electrochemiluminescence System by Coupling Energy Transfer with Electron Transfer for Sensitive Competitive Aptamer-Based Detection of Furanyl Fentanyl in Food.

机构信息

Jiangsu Key Laboratory of Advanced Catalytic Materials and Technology, School of Petrochemical Engineering, Changzhou University, Changzhou 213164, China.

Advanced Catalysis and Green Manufacturing Collaborative Innovation Center, Changzhou University, Changzhou 213164, China.

出版信息

J Agric Food Chem. 2024 Oct 9;72(40):22360-22368. doi: 10.1021/acs.jafc.4c07111. Epub 2024 Sep 30.

Abstract

Resonance energy transfer (RET) quenching is significantly important for developing electrochemiluminescence (ECL) sensors, but RET platforms face challenges like interference from other fluorescent substances and reliance on energy transfer efficiency. This study used Zn-PTC, formed by zinc ions coordinated with perylene-3,4,9,10-tetracarboxylate, as a dual-mechanism quencher to reduce the ECL intensity of carbon nitride nanosheets (Tg-CNNSs). CoO/NiCoO acts as a coreaction promoter, enhancing and stabilizing the luminescence of Tg-CNNSs. Zn-PTC absorbs energy from Tg-CNNSs, altering the fluorescence lifetime to confirm energy transfer, while energy-level matching demonstrates electron transfer. By leveraging both RET and electron transfer mechanisms, the designed ECL aptasensor significantly reduces signal fluctuations that may arise from a single mechanism, resulting in more stable and reliable detection outcomes. The ECL aptasensor designed for furanyl fentanyl (FUF) detection shows excellent performance with a detection limit of 5.7 × 10 g/L, offering new pathways for detecting FUF and other small molecules.

摘要

共振能量转移(RET)猝灭对于开发电化学发光(ECL)传感器非常重要,但 RET 平台面临着其他荧光物质干扰和依赖能量转移效率等挑战。本研究使用锌离子与苝-3,4,9,10-四羧酸配位形成的 Zn-PTC 作为双机制猝灭剂来降低氮化碳纳米片(Tg-CNNSs)的 ECL 强度。CoO/NiCoO 作为共反应促进剂,增强和稳定 Tg-CNNSs 的发光。Zn-PTC 从 Tg-CNNSs 吸收能量,改变荧光寿命以确认能量转移,而能级匹配则表明电子转移。通过利用 RET 和电子转移机制,设计的 ECL 适体传感器显著降低了可能由单一机制引起的信号波动,从而获得更稳定和可靠的检测结果。设计用于检测呋喃芬太尼(FUF)的 ECL 适体传感器具有出色的性能,检测限为 5.7×10 g/L,为检测 FUF 和其他小分子提供了新途径。

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