化学
电化学发光
催化作用
组合化学
协同催化
光化学
纳米技术
均相催化
化学发光
荧光
作者
Yamei Li,Xue Dong,Tingting Wu,Xiang Ren,Yu Du,Huangxian Ju,Qin Wei
标识
DOI:10.1021/acs.analchem.6c02862
摘要
Precise quantification of α-synuclein (α-Syn), an important species associated with Parkinson's disease and related neurodegenerative disorders, is of paramount importance for early diagnosis and intervention. While electrochemiluminescence (ECL) has emerged as a powerful analytical technique owing to its low background interference and high sensitivity, the performance of MOF-based ECL systems is often limited by sluggish interfacial charge transfer and insufficient co-reactant activation at a single type of catalytic site. To overcome these bottlenecks, a two-dimensional (2D) ZnCu metal-organic framework/TiO2 (ZCMT) heterojunction sensing system was constructed by coupling interface engineering with a dual-site synergistic catalysis strategy. Specifically, the heterojunction facilitates directional charge transport by promoting electron delocalization and interfacial charge redistribution. Concurrently, the Cu- and Ti-based redox-active centers synergistically facilitate K2S2O8 activation and accelerate its reduction. This synergistic mechanism substantially enhances its ECL performance. By integrating the ZCMT platform with DNAzyme-assisted amplification strategy, a high-performance ECL biosensor was constructed for the ultrasensitive quantification of α-Syn. Overall, this study provides an effective strategy for overcoming the charge-transfer and catalytic limitations of MOF-based ECL systems and establishes a promising platform for the ultrasensitive analysis of α-Syn, with potential applications in the early screeningof Parkinson's disease.
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