化学
电化学发光
兴奋剂
共价键
联轴节(管道)
光电子学
天线(收音机)
光化学
有机化学
电极
物理化学
电信
复合材料
计算机科学
物理
材料科学
作者
Bo Fan,Ding Jiang,Yuan Ni,Ziyu Hu,Zheng Sun,Haibo Li,Wenchang Wang,Zhidong Chen
标识
DOI:10.1021/acs.analchem.5c03193
摘要
Rational design of both mechanistic pathways and material compositions is essential to advance COF-based electrochemiluminescence (ECL) systems. In this study, aggregation-induced emission covalent organic framework (AIE-COF) nanoprobes with excellent ECL performance were developed based on Tb3+-functionalized covalent organic framework (Tb@A-COF). The Tb@A-COF system demonstrates enhanced ECL performance through synergistic integration of three complementary mechanisms: (1) (4',4',4',4'-(1,2-ethenediylidene)tetrakis [1,1'-biphenyl]-4-carboxaldehyde (ETBC) ligands function as antenna-like sensitizers that amplify luminescence intensity by 14.62-fold via efficient energy transfer to Tb3+ centers; (2) the constructed silver nanowire-based (Ag NWs) Schottky junction effectively suppresses electrode passivation while improving signal stability through optimized interfacial charge transfer kinetics; (3) cobalt oxide nanosheets (CoOOH NSs) enable dynamic signal modulation via precisely regulated quenching effects on the ECL process. This multidimensional optimization strategy achieves coordinated enhancement of both emission intensity and system stability. The synergistic optimization strategy resulted in an ultrasensitive biosensor capable of detecting isobutyryl fentanyl (iBF) with an ultralow detection limit of 8.97 × 10-16 g/L. This study establishes a multiple amplification strategy for rare-earth-COF composites in the field of ECL, which provides both a conceptual framework for improving the performance of ECL in crystalline frameworks and a new perspective for the development of efficient and stable ECL technology.
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