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Computational Exploration of Novel Silicon Nanostructures

机译:新型硅纳米结构的计算探索

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Discovery of novel Si nanostructures would open up a new avenue for science and technology as the discoveries of C_(60) and carbon nanotubes did. With this expectation, we have explored novel Si nanostructures by combining empirical molecular-dynamics simulations and structure optimizations with the density functional theory. Our molecular-dynamics simulations demonstrate (1) an icosahedral Si nanodot forms by freezing a droplet in vacuum, (2) Si-fullerene-linked nanowires, such as Si_(16)- and Si_(20)-linked nanowires, form by freezing liquid Si inside carbon nanotubes, and (3) a polyicosahedral Si nanowire forms by freezing liquid Si inside a cylindrical nanopore. The unique cage structure of the polyicosahedral Si nanowire allows us to tune the electronic properties by encapsulating guest atoms into its cages. Our density functional theory calculations reveal that a semiconducting hydrogen-terminated polyicosahedral Si nanowire becomes metallic by the sodium and iodine doping.
机译:Discovery新型Si纳米结构将为C_(60)和碳纳米管的发现开辟了新的科技大道。为此,我们通过将经验分子动态模拟和结构优化与密度泛函理论相结合,探索了新型SI纳米结构。我们的分子动力学模拟示出了(1)通过在真空中冻结液滴,(2)Si-富勒烯连接的纳米线,例如Si_(16) - 和Si_(20) - 链接的纳米线,形成通过冷冻,形成ICosaheLeSe Si纳米型。碳纳米管内的液体Si,和(3)通过冷冻液体Si在圆柱形纳米孔内的液体Si形成的聚角乳型Si纳米线。多聚梭思二纳米线的独特笼结构使我们能够通过将客体原子封装到其笼中来调谐电子性质。我们的密度泛函理论计算揭示了半导体氢封端的聚体Si纳米型通过钠和碘掺杂成为金属。

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