电化学发光
化学
纳米团簇
双金属片
密度泛函理论
电子转移
纳米技术
催化作用
异质结
纳米孔
飞秒
吸附
纳米复合材料
阳极
生物传感器
过氧化氢
光化学
分析物
电极
电子结构
纳米颗粒
组合化学
化学工程
纳米线
纳米晶
作者
Huining Chai,Xiao Tan,Xi Sun,Zhishuang Yuan,Jing Guan,Tong Shu,Xueji Zhang,Guangyao Zhang
标识
DOI:10.1021/acs.analchem.6c02285
摘要
Precise modulation of reactive oxygen species (ROS) pathways is pivotal for advanced electrochemiluminescence (ECL) sensing. However, achieving this in complex biofluids remains a formidable challenge. Herein, we report a hierarchical hollow nanocomposite (Au25@FeMOP) by confining atomically precise Au25(Cys)18 nanoclusters within an Fe-porphyrin-based microporous organic polymer. Spectroscopic analysis and density functional theory (DFT) calculations reveal a robust Au-Cys-Fe interfacial bridge. This linkage facilitates directional electron transfer from Au clusters to Fe single-sites. Such electronic coupling optimizes the d-band center and spin density of the Fe centers, thereby refining the adsorption of oxygen intermediates. Consequently, the Au25@FeMOP architecture exhibits unique potential-resolved ECL behavior. It selectively catalyzes superoxide radical (O2•-) generation at cathodic potentials and switches to hydroxyl radical (•OH) production at anodic potentials. Leveraging this switchable mechanism, we constructed an intelligent sensing platform. This system generates distinct ECL "fingerprints" for various urinary metabolites, enabling the precise discrimination of key components in simulated urine. This work elucidates the atomic-level synergistic mechanism of bimetallic ECL catalysts and establishes a new pathway for noninvasive health monitoring.
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