Dual-quenching mechanisms in electrochemiluminescence immunoassay based on zinc-based MOFs of ruthenium hybrid for D-dimer detection

化学 电化学发光 猝灭(荧光) 贵金属 纳米颗粒 电子转移 光化学 色谱法 金属 纳米技术 检出限 荧光 有机化学 催化作用 材料科学 物理 量子力学
作者
Guanhui Zhao,Yu Du,Nuo Zhang,Chenchen Li,Hongmin Ma,Dan Wu,Wei Wei Cao,Yaoguang Wang,Wei Qin
出处
期刊:Analytica Chimica Acta [Elsevier]
卷期号:1253: 341076-341076 被引量:6
标识
DOI:10.1016/j.aca.2023.341076
摘要

The successful application of electrochemiluminescence (ECL) in immunoassay for clinical diagnosis requires improving sensitivity and accuracy. Herein was reported an ECL analytical model based zinc-based metal-organic frameworks of ruthenium hybrid (RuZn MOFs) as the signal emitter. To enlarge the output difference, the quenching effect of three different noble metal nanoparticles included palladium seeds (Pdseeds), palladium octahedrons (Pdoct), and Pt-based palladium ([email protected]oct) core-shell were researched. Among them, [email protected]oct core-shell possessed higher activity and improved durability than Pd-only (NPs), they could load more protein macromolecules amicably and stabilized in the analysis system. Furthermore, since the charge redistribution owing to the hybridization of the Pt and Pd atoms in [email protected]oct, it could generate the electron flow maximumly from the emitter RuZn MOFs to [email protected]oct and result in the enhancement of quenching ECL. And the UV absorption of noble metal nanoparticles overlapped with the ECL emission of RuZn MOFs to varying degrees, which caused the behavior of resonance energy transfer (RET) reaction at the same time. This would greatly promote the sensitivity of this ECL system compared with the traditional single quenching mechanism. Based on this, a signal-off immunsensor was constructed to sensitive detection of D-dimer with linearity range from 0.001 to 200 ng mL−1, limit of detection (LOD) was 0.20 pg mL−1 and provide a further theoretical basis for the clinical application of ECL technology.
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