化学
光热治疗
消散
纳米技术
可重用性
纳米结构
免疫分析
信号(编程语言)
电场
生物系统
纳米颗粒
模块化设计
光电子学
多孔性
肠炎沙门氏菌
纳米孔
电极
电磁场
灵敏度(控制系统)
生物传感器
电磁干扰
串扰
焊剂(冶金)
胶体金
作者
Rui Shu,Sijie Liu,Lihong Su,Lei Zhao,Ibrahim A. Darwish,Yi-Xiang Wang,Daohong Zhang
标识
DOI:10.1021/acs.analchem.6c01895
摘要
Pathogen surveillance in complex environmental matrices requires analytical methods that are sensitive, robust, and suitable for field deployment. Here, we report a geometry-engineered trimetallic PdPtRu nanozyme-enabled multimodal lateral flow immunoassay (LFIA) for pathogen analysis. The spiky porous architecture, together with multimetallic synergy, promotes enhanced photothermal conversion and catalytic signal transduction through localized charge redistribution and structural effects. Finite element simulations reveal an enhancement of the local electric field and an increased power dissipation density, thereby improving photothermal conversion efficiency. The intensified local field induces strong interfacial polarization, resulting in a 5.43-fold increase in surface ·O 2 – flux and a reduced reaction energy barrier for peroxide activation. When integrated into LFIAs, this label improved the detection sensitivity for Salmonella typhimurium by 200-fold compared with conventional colloidal gold assays. From sample to answer, we further developed a smartphone application embedding a convolutional neural network and coupled it with a portable 3D-printed signal acquisition module to construct a self-contained, intelligent, and field-deployable detection system. This platform achieves risk-level stratification with high predictive performance (R 2 = 0.98, AUC = 0.99). This work establishes a scalable, modular foundation for early-warning surveillance systems, facilitating timely public health interventions.
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