Department of Chemistry, Michigan Technological University , Houghton, Michigan 49931, United States.
Key Laboratory of Analysis and Detection for Food Safety (Fujian Province and Ministry of Education), Collaborative Innovation Center of Detection Technology for Haixi Food Safety and Products (Fujian Province), Department of Chemistry, Fuzhou University , Fuzhou 350108, People's Republic of China.
Nano Lett. 2017 Sep 13;17(9):5572-5579. doi: 10.1021/acs.nanolett.7b02385. Epub 2017 Aug 18.
Au nanoparticles (AuNPs) as signal reporters have been utilized in colorimetric in vitro diagnostics (IVDs) for decades. Nevertheless, it remains a grand challenge to substantially enhance the detection sensitivity of AuNP-based IVDs as confined by the inherent plasmonics of AuNPs. In this work, we circumvent this confinement by developing unique dual-functional AuNPs that were engineered by coating conventional AuNPs with ultrathin Pt skins of sub-10 atomic layers (i.e., Au@Pt NPs). The Au@Pt NPs retain the plasmonic activity of initial AuNPs while possessing ultrahigh catalytic activity enabled by Pt skins. Such dual functionalities, plasmonics and catalysis, offer two different detection alternatives: one produced just by the color from plasmonics (low-sensitivity mode) and the second more sensitive color catalyzed from chromogenic substrates (high-sensitivity mode), achieving an "on-demand" tuning of the detection performance. Using lateral flow assay as a model IVD platform and conventional AuNPs as a benchmark, we demonstrate that the Au@Pt NPs could enhance detection sensitivity by 2 orders of magnitude.
金纳米粒子(AuNPs)作为信号报告物,已在比色体外诊断(IVD)中应用了数十年。然而,由于 AuNPs 的固有等离子体限制,大幅度提高基于 AuNP 的 IVD 的检测灵敏度仍然是一个巨大的挑战。在这项工作中,我们通过开发独特的双功能 AuNPs 来规避这种限制,该 AuNPs 通过在亚 10 原子层的超薄 Pt 皮(即 Au@Pt NPs)上涂覆常规 AuNPs 而形成。Au@Pt NPs 保留了初始 AuNPs 的等离子体活性,同时具有由 Pt 皮赋予的超高催化活性。这种双功能,即等离子体和催化,提供了两种不同的检测选择:一种仅由等离子体产生的颜色(低灵敏度模式),另一种由显色底物催化产生的更灵敏的颜色(高灵敏度模式),实现了检测性能的“按需”调整。我们使用侧向流动分析作为模型 IVD 平台,并以常规 AuNPs 作为基准,证明 Au@Pt NPs 可以将检测灵敏度提高 2 个数量级。