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Altering the dewetting characteristics of ultrathin gold and silver films using a sacrificial antimony layer

机译:使用牺牲锑层改变超薄金银膜的去湿特性

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摘要

Solid state dewetting of ultrathin films is the most straightforward means of fabricating substrate-supported noble metal nanostructures. This assembly process is, however, quite inflexible, yielding either densely packed smaller structures or widely spaced larger structures. Here, we demonstrate the utility of introducing a sacrificial antimony layer between the substrate and noble metal overlayer. We observe an agglomeration process which is radically altered by the concurrent sublimation of antimony. In stark contrast with conventional dewetting, where the thickness of the deposited metal film determines the characteristic length scales of the assembly process, it is the thickness of the sacrificial antimony layer which dictates both the nanoparticle size and interparticle spacing. The result is a far more flexible self-assembly process where the nanoparticle size and areal density can be varied widely. Demonstrations show nanoparticle areal densities which are varied over four orders of magnitude assembled from the identical gold layer thickness, where the accompanying changes to nanostructure size see a systematic shift in the wavelength of the localized surface plasmon resonance. As a pliable self-assembly process, it offers the opportunity to tailor the properties of an ensemble of nanostructures to meet the needs of specific applications.
机译:超薄膜的固态去湿是制造衬底支撑的贵金属纳米结构的最直接的方法。但是,这种组装过程非常不灵活,会产生密集堆积的较小结构或间隔较大的较大结构。在这里,我们演示了在基材和贵金属覆盖层之间引入牺牲锑层的实用程序。我们观察到一个聚集过程,该过程被锑的同时升华从根本上改变了。与传统的去湿形成鲜明对比,在传统的去湿中,​​沉积的金属膜的厚度决定了组装过程的特征长度尺度,牺牲锑层的厚度决定了纳米颗粒的尺寸和颗粒间的间距。结果是自组装过程更加灵活,纳米颗粒大小和面密度可以在很大范围内变化。演示表明,从相同的金层厚度开始,纳米颗粒的面密度在四个数量级上变化,其中伴随的纳米结构尺寸变化看到了局部表面等离子体激元共振波长的系统变化。作为一种灵活的自组装过程,它提供了机会来调整纳米结构整体的性能,以满足特定应用的需求。

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