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首页> 外文期刊>Nanotechnology >Tuning the morphology of silver nanostructures photochemically coated on glass substrates: an effective approach to large-scale functional surfaces
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Tuning the morphology of silver nanostructures photochemically coated on glass substrates: an effective approach to large-scale functional surfaces

机译:调整光明涂覆在玻璃基板上的银纳米结构的形态:大规模功能表面的有效方法

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摘要

This paper reports on a simple and environmentally friendly photochemical process capable of generating nano-layers (8-22 nm) of silver nanostructures directly onto glass surfaces. This approach opens the way to large-scale functionalized surfaces with plasmonic properties through a single light-induced processing. Thus, Ag nanostructures top-coated were obtained through photo-reduction, at room temperature, of a photosensitive formulation containing a metal precursor, free from extra toxic stabilizers or reducing agents. The reactive formulation was confined between two glass slides and exposed to a continuous near-UV source. In this way, stable silver nano-layers can be generated directly on the substrate with a very good control of the morphology of as-synthesized nanostructures that allows tailoring the optical properties of the coated layers. The position and width of the corresponding surface plasmon resonance bands can be adjusted over a broad spectral window. By extension, this low-cost and easy-to-apply process can also be used to coat ultra thin layers of metal nanostructures on a variety of substrates. The possibility of controlling of nanostructures shape should achieve valuable developments in many fields, as diverse as plasmonics, surface enhanced Raman scattering, nano-electronic circuitry, or medical devices.
机译:这在一个简单的并能够产生银纳米结构体的纳米层(8-22纳米)直接施加到玻璃表面的环境友好的光化学过程纸张报告。这种方法将打开的方式来大规模通过单个光诱导处理官能化等离子体激元性能的表面。因此,是通过光还原而获得的Ag纳米结构顶部涂覆,在室温下,将含有金属前体,从额外的有毒的稳定剂或还原剂的分类的感光制剂。的反应制剂只限于两个载玻片之间,并暴露于连续的近UV源。以这种方式,稳定银纳米层可以直接与所合成的,允许定制的涂覆层的光学性质的纳米结构的形态的一个很好的控制所产生的衬底上。的位置和相应的表面等离子体共振带的宽度可以在很宽的光谱窗口被调整。通过扩展,本低成本和易于应用过程也可用于涂覆金属纳米结构的超薄层在各种基底上的。纳米结构形状的控制的可能性应该达到在许多领域有价值的发展,等不同的等离子体激元,表面增强拉曼散射,纳米电子电路,或医疗设备。

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