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揭示金纳米壳生长的奥秘。

Shedding light on the growth of gold nanoshells.

机构信息

Institute of Particle Technology (LFG), University of Erlangen-Nuremberg , Cauerstrasse 4, 91058 Erlangen, Germany.

出版信息

ACS Nano. 2014 Mar 25;8(3):3088-96. doi: 10.1021/nn500729r. Epub 2014 Feb 25.

Abstract

Nanostructured particles containing noble metals can have highly tunable localized surface plasmon resonances and are therefore of particular interest for numerous applications. Nanoshells comprising a dielectric core and gold or silver shell are a widely researched systems because of the strong dependence of their optical properties on the ratio of core diameter to shell thickness. Although seeded-growth procedures have been developed to produce these particles, the many reported studies show significant variation in the nanoshell morphologies and hence optical properties. In order to establish processes that reproducibly synthesize nanoshells with high optical quality, it is necessary to develop techniques that monitor changes at the core particle surface during shell growth. For that purpose, we have carried out in situ nonlinear second-harmonic scattering (SHS) and linear vis-NIR extinction spectroscopy simultaneously during the seeded growth of gold nanoshells on silica core particles. Our SHS measurements show a striking variation in the nonlinear optical properties of the growing gold nanoshells. In comparison with linear optical measurements and with scanning electron microscopy (SEM) images made of gold nanoshells produced with varying shell completenesses, the SHS signal was observed to reach a peak intensity at a stage prior to shell closure. We attribute this high sensitivity of the SHS signal to the incomplete nanoshell surface morphology to the generation and subsequent degeneration of regions of electric field enhancement at gaps between isolated gold islands, which grow and coalesce. This conclusion is corroborated by finite-difference time-domain simulations of incomplete nanoshells. We suggest that the in situ analytical approach demonstrated here offers significant promise for future activities regarding the in-process optimization of the morphology and optical properties of metal nanoshells and other nanostructured plasmonic particles.

摘要

含有贵金属的纳米结构颗粒可以具有高度可调谐的局域表面等离子体共振,因此在许多应用中特别感兴趣。由介电核和金或银壳组成的纳米壳是广泛研究的系统,因为它们的光学性质强烈依赖于核直径与壳厚度的比值。尽管已经开发了种子生长程序来生产这些颗粒,但许多报道的研究表明纳米壳的形态和光学性质存在显著差异。为了建立可重复性地合成具有高光学质量的纳米壳的过程,有必要开发监测核颗粒表面在壳生长过程中变化的技术。为此,我们在硅核颗粒上的金纳米壳的种子生长过程中同时进行了原位非线性二次谐波散射(SHS)和线性可见近红外消光光谱测量。我们的 SHS 测量显示出生长中的金纳米壳的非线性光学性质的惊人变化。与线性光学测量和具有不同壳完整度的金纳米壳的扫描电子显微镜(SEM)图像进行比较,观察到 SHS 信号在壳闭合之前达到峰值强度。我们将 SHS 信号的这种高灵敏度归因于不完全纳米壳表面形态,这是由于在孤立的金岛之间的间隙处产生和随后退化的电场增强区域所致,这些区域会生长和融合。有限差分时域模拟不完整纳米壳证实了这一结论。我们建议,这里展示的原位分析方法为未来关于金属纳米壳和其他等离子体纳米结构颗粒的形态和光学性质的过程优化提供了很大的前景。

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