首页> 外文期刊>ACS Omega >Self-Assembly of Au@Ag Nanoparticles on Mussel Shell To Form Large-Scale 3D Supercrystals as Natural SERS Substrates for the Detection of Pathogenic Bacteria
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Self-Assembly of Au@Ag Nanoparticles on Mussel Shell To Form Large-Scale 3D Supercrystals as Natural SERS Substrates for the Detection of Pathogenic Bacteria

机译:Au @ Ag纳米粒子在贻贝壳上的自组装形成大规模3D超晶作为天然SERS底物,用于检测病原菌。

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Herein, we developed a natural surface-enhanced Raman scattering (SERS) substrate based on size-tunable Au@Ag nanoparticle-coated mussel shell to form large-scale three-dimensional (3D) supercrystals (up to 10 cm~(2)) that exhibit surface-laminated structures and crossed nanoplates and nanochannels. The high content of CaCO_(3) in the mussel shell results in superior hydrophobicity for analyte enrichment, and the crossed nanoplates and nanochannels provided rich SERS hot spots, which together lead to high sensitivity. Finite-difference time-domain simulations showed that nanoparticles in the channels exhibit apparently a higher electromagnetic field enhancement than nanoparticles on the platelets. Thus, under optimized conditions (using Au@AgNPs with 5 nm shell thickness), highly sensitive SERS detection with a detection limit as low as 10~(–9) M for rhodamine 6G was obtained. Moreover, the maximum electromagnetic field enhancement of different types of 3D supercrystals shows no apparent difference, and Au@AgNPs were uniformly distributed such that reproducible SERS measurements with a 6.5% variation (613 cm~(–1) peak) over 20 spectra were achieved. More importantly, the as-prepared SERS substrates can be utilized for the fast discrimination of Escherichia coli , Staphylococcus aureus , and Pseudomonas aeruginosa by discriminant analysis. This novel Au@Ag self-assembled mussel shell template holds considerable promise as low-cost, durable, sensitive, and reproducible substrates for future SERS-based biosensors.
机译:本文中,我们基于尺寸可调的Au @ Ag纳米颗粒包覆的贻贝壳开发了一种天然的表面增强拉曼散射(SERS)基底,以形成大规模的3D(3D)超晶(最大10 cm〜(2))。表现出表面层状结构以及交叉的纳米板和纳米通道。贻贝壳中高含量的CaCO_(3)导致卓越的疏水性,可富集分析物,而交叉的纳米板和纳米通道提供了丰富的SERS热点,这共同导致了高灵敏度。时域有限差分模拟表明,通道中的纳米颗粒明显比血小板上的纳米颗粒具有更高的电磁场增强。因此,在优化条件下(使用壳厚度为5 nm的Au @ AgNPs),获得了高灵敏度的SERS检测,对于罗丹明6G的检测限低至10〜(–9)M。此外,不同类型的3D超晶的最大电磁场增强没有明显差异,Au @ AgNPs均匀分布,从而在20个光谱上具有6.5%的变化(613 cm〜(–1)峰)可再现的SERS测量值。更重要的是,可以通过判别分析将所制备的SERS底物用于快速鉴别大肠杆菌,金黄色葡萄球菌和铜绿假单胞菌。这种新颖的Au @ Ag自组装贻贝壳模板作为面向未来基于SERS的生物传感器的低成本,耐用,灵敏且可重现的底物,具有广阔的前景。

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