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Growth Mechanism of Five-Fold Twinned Ag Nanowires from Multiscale Theory and Simulations

机译:五折孪晶AG纳米线从多尺度理论和模拟的生长机制

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摘要

Five-fold twinned metal nanowires can be 400 synthesized with high aspect ratios via solution-phase methods. The origins of their anisotropic growth, however, are poorly understood. We combine atomic-scale, mesoscale, and continuum theoretical methods to predict growth morphologies of Ag nanowires from seeds and to demonstrate that high aspect ratio nanowires can originate from anisotropic surface diffusion induced by the strained nanowire structure. Nanowire seeds are similar to Marks decahedra, with {111} "notches" that accelerate diffusion along the nanowire axis to facilitate one-dimensional growth. The strain distribution on the {111} facets induces heterogeneous atom aggregation and leads to atom trapping at the nanowire ends. We predict that decahedral Ag seeds can grow to become nanowires with aspect ratios in the experimental range. Our studies show that there is a complex interplay between atom deposition, diffusion, seed architecture, and nanowire aspect ratio that could be manipulated experimentally to achieve controlled nanowire syntheses.
机译:通过溶液相方法,具有高纵横比的五折孪晶金属纳米线可以是400个。然而,他们各向异性增长的起源也很难理解。我们结合了原子尺度,Mescre和连续的理论方法,以预测来自种子的Ag纳米线的生长形态,并证明高纵横比纳米线可以源自由应变纳米线结构引起的各向异性表面扩散。纳米线种子类似于Marks Decahedra,其中{111}“凹口”,其加速沿纳米线轴线扩散以促进一维生长。 {111}小平面上的应变分布诱导异质原子聚集并导致纳米线端部的原子捕获。我们预测,在实验范围内,DecaheDral Ag种子可以生长成纳米线以宽高比。我们的研究表明,原子沉积,扩散,种子架构和纳米线纵横比之间存在复杂的相互作用,其可以通过实验操纵以实现受控的纳米线合成。

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