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Synthesis and characterization of noble metal–titania core–shell nanostructures with tunable shell thickness

机译:壳厚度可调的贵金属-二氧化钛核-壳纳米结构的合成与表征

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摘要

Core–shell nanostructures have found applications in many fields, including surface enhanced spectroscopy, catalysis and solar cells. Titania-coated noble metal nanoparticles, which combine the surface plasmon resonance properties of the core and the photoactivity of the shell, have great potential for these applications. However, the controllable synthesis of such nanostructures remains a challenge due to the high reactivity of titania precursors. Hence, a simple titania coating method that would allow better control over the shell formation is desired. A sol–gel based titania coating method, which allows control over the shell thickness, was developed and applied to the synthesis of Ag@TiO2 and Au@TiO2 with various shell thicknesses. The morphology of the synthesized structures was investigated using scanning electron microscopy (SEM). Their sizes and shell thicknesses were determined using tunable resistive pulse sensing (TRPS) technique. The optical properties of the synthesized structures were characterized using UV–vis spectroscopy. Ag@TiO2 and Au@TiO2 structures with shell thickness in the range of ≈40–70 nm and 90 nm, for the Ag and Au nanostructures respectively, were prepared using a method we developed and adapted, consisting of a change in the titania precursor concentration. The synthesized nanostructures exhibited significant absorption in the UV–vis range. The TRPS technique was shown to be a very useful tool for the characterization of metal–metal oxide core–shell nanostructures.
机译:核壳纳米结构已在许多领域得到应用,包括表面增强光谱学,催化和太阳能电池。结合了核的表面等离振子共振特性和壳层的光活性的包覆有二氧化钛的贵金属纳米粒子在这些应用中具有巨大潜力。然而,由于二氧化钛前体的高反应性,这种纳米结构的可控合成仍然是一个挑战。因此,需要一种可以更好地控制壳形成的简单的二氧化钛涂覆方法。开发了一种基于溶胶-凝胶的二氧化钛涂层方法,该方法可以控制壳的厚度,并将其应用于具有各种壳厚度的Ag @ TiO2和Au @ TiO2的合成。使用扫描电子显微镜(SEM)研究了合成结构的形态。使用可调电阻脉冲感应(TRPS)技术确定其尺寸和外壳厚度。合成结构的光学性质使用紫外可见光谱进行表征。使用我们开发和改进的方法制备了壳厚度分别在≈40–70 nm和90 nm范围内的Ag @ TiO2和Au @ TiO2结构,该方法由二氧化钛前体的变化组成浓度。合成的纳米结构在UV-vis范围内表现出明显的吸收。 TRPS技术被证明是表征金属-金属氧化物核-壳纳米结构的非常有用的工具。

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