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标记核-卫星纳米组装体:组装序列对表面增强拉曼散射(SERS)性能的作用。

Tagged Core-Satellite Nanoassemblies: Role of Assembling Sequence on Surface-Enhanced Raman Scattering (SERS) Performance.

机构信息

Centre of Physics, Chemistry and Mechanical Engineering, Queensland University of Technology, Brisbane, QLD, Australia.

Current affiliation: School of Physics and Astronomy, University of Exeter, Exeter, UK.

出版信息

Appl Spectrosc. 2019 Dec;73(12):1428-1435. doi: 10.1177/0003702819856666. Epub 2019 Aug 8.

Abstract

Plasmonic nanoassemblies with amplified optical responses are attractive as chemo/bio sensors and diagnostic tracking agents. For real-life implementation, such nanostructures require a well-designed and controlled formation for maximizing the optical amplification. Forming these nanoassemblies typically requires numerous steps; however, the importance of the sequence of the steps is typically not discussed. Thus, here we have investigated the role of the sequence of tagging (or labeling, barcoding) of such plasmonic nanoassemblies with Raman active molecules in a quest to maximize the surface-enhanced Raman scattering (SERS) enhancement that could be achieved from the nanoassemblies. We have chosen the core-satellite nanoassembly arrangement to study the role of tagging sequence because it allows us to keep structural parameters constant that would otherwise influence the SERS amplification. We demonstrate that incorporating the tag molecule at an assembly point before formation of the nanojunctions leads to more tag molecules being positioned at the core-satellite nanojunctions, thereby resulting in higher SERS signal enhancement. This will thus prove to be a useful tool in fully utilizing the nanoassembly morphology generated hot-spot and maximizing its SERS performance.

摘要

具有放大光学响应的等离子体纳米组装体作为化学/生物传感器和诊断跟踪剂具有吸引力。为了在实际应用中,这些纳米结构需要经过精心设计和控制的形成,以最大限度地提高光学放大。形成这些纳米组装体通常需要多个步骤;然而,通常不讨论步骤的顺序的重要性。因此,在这里,我们研究了用拉曼活性分子对这种等离子体纳米组装体进行标记(或标记、编码)的顺序对最大化可从纳米组装体获得的表面增强拉曼散射(SERS)增强的作用。我们选择核-卫星纳米组装体排列来研究标记序列的作用,因为它允许我们保持结构参数不变,否则这些结构参数会影响 SERS 放大。我们证明,在形成纳米结之前在组装点掺入标记分子会导致更多的标记分子被定位在核-卫星纳米结处,从而导致更高的 SERS 信号增强。因此,这将成为充分利用纳米组装体形态产生的热点并最大化其 SERS 性能的有用工具。

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