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Synergistic enhancement via plasmonic nanoplate-bacteria-nanorod supercrystals for highly efficient SERS sensing of food-borne bacteria

机译:通过等离激元纳米板-细菌-纳诺德超晶的协同增强,对食源性细菌进行高效SERS感测

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摘要

Bio-sensing techniques utilizing metallic nanoparticles as a probe have gained more and more attention and play today an important role in the detection of bacteria. To date, although several sensing materials have been tested, there is still a long way to go to achieve a fast, low-cost, ultrasensitive and multifunctional substrate suitable for a universal biosensor for detection of bacterial cells. Here, we report a novel probe design based on anisotropic plasmonic nanoparticles organized to a biocompatible 3D bio-inorganic scaffold, i.e., nanoplate-bacteria-nanorod supercrystals (NBNS) with extremely high surface-enhanced Raman spectroscopic (SERS) activity as a model of synergistic plasmonic enhancement from nanoparticles and assembly. This unique structure of nanoparticles incorporated into supercrystal assembly allows efficient detection, identification and classification of cells and bacteria. In this design, the NBNS ensures that the target cells take advantage of the superior multifold increase in Raman scattering signals (electromagnetic enhancement from both types of nanoparticles), due to the geometry of the 3D scaffold. The excellent reproducibility and stability of NBNS substrates were confirmed by comparing the SERS activities of different substrates and analytes. Principal component analysis (PCA) applied to the SERS spectra clearly discriminated the homogeneous bacterial samples and their mixtures. Successful detection and identification of bacteria in model samples consisting of two representative bacteria blends in Fanta soft-drink were demonstrated via plasmonic bio-inorganic scaffold combined with PCA analysis. We believe that this work will greatly facilitate the development of ultrasensitive SERS probes for highly advanced biosensor, pioneering the use of SERS for controlling food safety.
机译:利用金属纳米颗粒作为探针的生物传感技术越来越受到人们的关注,并在当今细菌检测中发挥着重要作用。迄今为止,尽管已经测试了多种传感材料,但是要实现一种适用于检测细菌细胞的通用生物传感器的快速,低成本,超灵敏和多功能的基板,还有很长的路要走。在这里,我们报告了一种新颖的探针设计,该探针设计基于组织到生物相容性3D生物-无机支架(即具有极高表面增强拉曼光谱(SERS)活性)的纳米板-细菌-纳米线超晶体(NBNS)作为模型的各向异性等离子体纳米颗粒纳米粒子和组装的协同等离子体增强。结合到超晶组件中的纳米颗粒的这种独特结构允许对细胞和细菌进行有效的检测,鉴定和分类。在此设计中,由于3D支架的几何形状,NBNS确保目标细胞利用拉曼散射信号的优异多倍增加(两种类型的纳米颗粒均产生电磁增强)。通过比较不同底物和分析物的SERS活性,证实了NBNS底物的优异再现性和稳定性。应用于SERS光谱的主成分分析(PCA)清楚地区分了均相细​​菌样品及其混合物。通过等离子生物无机支架与PCA分析相结合,成功地检测和鉴定了芬达软饮料中由两种代表性细菌混合物组成的模型样品中的细菌。我们相信这项工作将极大地促进用于高度先进的生物传感器的超敏SERS探针的开发,开创了使用SERS来控制食品安全的先河。

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