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首页> 外文期刊>RSC Advances >Intra-nanogap controllable Au plates as efficient, robust, and reproducible surface-enhanced Raman scattering-active platforms
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Intra-nanogap controllable Au plates as efficient, robust, and reproducible surface-enhanced Raman scattering-active platforms

机译:NanoGap内部可控AU板作为高效,坚固,可再现的表面增强的拉曼散射有效平台

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Practical application of surface-enhanced Raman scattering (SERS)-active platforms requires that they provide highly uniform and reproducible SERS signals. Moreover, to achieve highly stable and consistent SERS signals, it is important to control the nanostructured gaps of SERS-active platforms precisely. Herein, we report the synthesis of gap-controllable nanoporous plates and their application to efficient, robust, uniform, and reproducible SERS-active platforms. To prepare well-defined nanoporous plates, ultraflat, ultraclean, and single-crystalline Au nanoplates were employed. The Au nanoplates were transformed to AuAg alloy nanoplates by reacting with AgI in the vapor phase. The Ag in the alloy nanoplates was then chemically etched, thus forming well-defined SERS-active nanoporous plates. For the precise control of gaps in the nanoporous plates, we investigated the alloy forming mechanism based on X-ray photoelectron spectroscopy and transmission electron microscopy analyses. According to the mechanism, the composition of Ag was tunable by varying the reaction temperature, thus making the nanostructured gaps of the porous plates adjustable. We optimized the nanoporous plates to exhibit the strongest SERS signals as well as excellent uniformity and reproducibility. The computational simulation also supports the experimental SERS signals of nanoporous plates. Furthermore, we successfully performed label-free detection of a biocide mixture (5-chloro-2-methyl-4-isothiazolin-3-one/2-methyl-4-isothiazol-3-one) up to 10?ppm using Au nanoporous plates. The adoption of single-crystalline Au nanoplates, the novel synthesis method for alloy nanoplates in the vapor phase, and the investigation of alloy forming mechanisms synergistically contributed to the formation of well-defined nanoporous plates. We anticipate that the nanoporous plates will be useful for the practical sensing of trace chemical and biological analytes.
机译:表面增强拉曼散射(SERS) - 活性平台的实际应用要求它们提供高度均匀和可重复的SERS信号。此外,为了实现高度稳定和一致的SERS信号,重要的是准确控制SERS-活跃平台的纳米结构间隙。在此,我们报告了间隙可控纳米多孔板的合成及其应用于有效,鲁棒,均匀和可重复的Sers-Active平台。为了制备明确定义的纳米孔板,超薄,超薄和单晶Au纳米板。通过在气相中与AgI反应,将Au纳米纳米纳入纳米板转化为Auag合金纳米层。然后化学蚀刻合金纳米板中的Ag,从而形成明确限定的Sers-活性纳米多孔板。为了精确控制纳米孔板中的间隙,我们研究了基于X射线光电子能谱和透射电子显微镜分析的合金形成机制。根据该机制,通过改变反应温度来调谐Ag的组合物,从而使多孔板的纳米结构间隙可调节。我们优化了纳米多孔板,以表现出最强的SERS信号以及卓越的均匀性和再现性。计算仿真还支持纳米孔板的实验SERS信号。此外,我们使用Au纳米多孔成功地对杀生物剂混合物(5-氯-2-甲基-4-异噻唑啉-3-one / 2-甲基-4-异噻唑-3-一)进行了无标记的检测.PPM盘子。采用单晶Au纳米液相色板,对气相中合金纳米板的新型合成方法,以及对合金形成机制的研究协同促进了纳米多孔板的形成。我们预计纳米多孔板可用于痕量化学和生物分析物的实际感测。

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