首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Plasmonic Ag Core-Satellite Nanostructures with a Tunable Silica-Spaced Nanogap for Surface-Enhanced Raman Scattering
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Plasmonic Ag Core-Satellite Nanostructures with a Tunable Silica-Spaced Nanogap for Surface-Enhanced Raman Scattering

机译:具有可调的硅间隔纳米间隙的表面增强拉曼散射的等离子Ag核卫星纳米结构。

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Plasmonic Ag core satellite nanostructures were synthesized by utilizing the ultrathin silica shell as a spacer to generate a tunable nanogap between the Ag core and satellites. To synthesize the nanoparticles, Ag nanoparticles (Ag NPs) with a diameter of similar to 60 nm were synthesized as cores, on which Raman dyes were adsorbed and then tunable ultrathin silica shells from 2.0 to 6.5 nm were coated, followed by the deposition of Ag NPs as satellites onto the silica surface. The relationships between the SERS signal and the important parameters, including the satellite diameter and the nanogap distance, were studied by experimental methods and theoretical calculations. The maximum SERS intensity of the core satellite nanoparticles was over 14.6 times stronger than that of the isolated Raman-encoded Ag/PATP@SiO2 NP. The theoretical calculations indicated that the local maximum calculated enhancement factor (EF) of the hot spots with a 2.0 nm nanogap was 9.5 x 10(5). The well-defined Ag core satellite nanostructures have a high structural uniformity and an anomalously strong electromagnetic enhancement for highly quantitative SERS, leading to a better understanding of hot spot formation and providing new insights into the optimal design and synthesis of the hot SERS nanostructures in a controlled manner.
机译:通过利用超薄二氧化硅壳作为间隔物,在Ag核与卫星之间产生可调谐的纳米间隙,合成了等离子Ag核卫星纳米结构。为了合成纳米粒子,合成了直径约60 nm的Ag纳米粒子(Ag NPs)作为核,吸附了拉曼染料,然后涂覆了2.0至6.5 nm的可调超薄二氧化硅壳,然后沉积了Ag NP作为附属物进入二氧化硅表面。通过实验方法和理论计算研究了SERS信号与重要参数之间的关系,包括卫星直径和纳米间隙距离。核心卫星纳米粒子的最大SERS强度比分离的拉曼编码的Ag​​ / PATP @ SiO2 NP强14.6倍。理论计算表明,具有2.0 nm纳米间隙的热点的局部最大计算增强因子(EF)为9.5 x 10(5)。明确定义的银芯卫星纳米结构具有高度的结构均匀性和异常强的电磁增强作用,可实现高度定量的SERS,从而使人们更好地了解热点的形成,并为热SERS纳米结构的最佳设计和合成提供了新的见解。控制方式。

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