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Seed-mediated growth of gold nanoparticles using self-assembled monolayer of polystyrene microspheres as nanotemplate arrays

机译:使用聚苯乙烯微球自组装单层作为纳米模板阵列的金纳米粒子的种子介导生长

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Arrays of noble metal nanoparticles show potential applications in (bio-) sensing, optical storage, surface-enhanced spectroscopy, and waveguides. For all such potential devices, controlling the size, morphology, and interparticle spacing of the nanoparticles is very important. Here, we combine seed-mediated growth with nanosphere lithography to study the controllable growth of gold nanoparticles (Au NPs), in which the self-assembly monolayer of polystyrene (PS) on a silicon surface is used to guide the modi. cation of alkanesilanes and the subsequent adsorption of gold seeds; seed-mediated growth is applied to controlling the morphology and size of Au NPs. The size of adsorption region (determining the number of adsorbed gold seeds) is controlled by etching PS microspheres with oxygen plasma or annealing PS microspheres at the glass transition temperature. The size and morphology of the Au NPs are controlled by changing growth conditions. In such a way, we have achieved the dual control of the obtained Au NPs. Preliminary results show that this strategy holds a great promise. This approach can also be extended to a wide range of materials and substrates.
机译:贵金属纳米颗粒阵列显示出在(生物)传感,光学存储,表面增强光谱学和波导中的潜在应用。对于所有这样的潜在装置,控制纳米粒子的尺寸,形态和粒子间间距非常重要。在这里,我们将种子介导的生长与纳米球体光刻技术相结合,以研究金纳米颗粒(Au NPs)的可控生长,其中在硅表面上使用聚苯乙烯(PS)的自组装单层膜来指导该方法。烷烃硅烷阳离子和随后的金种子吸附;种子介导的生长被应用于控制金纳米颗粒的形态和大小。通过用氧等离子体蚀刻PS微球或在玻璃化转变温度对PS微球进行退火来控制吸附区域的大小(确定吸附的金种子的数量)。通过改变生长条件来控制金纳米颗粒的大小和形态。通过这种方式,我们实现了对获得的金纳米颗粒的双重控制。初步结果表明,该策略前景广阔。该方法也可以扩展到广泛的材料和基底。

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