论文标题
六角形钻石SI和GE纳米线形成的热力学驱动力
Thermodynamic driving force in the formation of hexagonal-diamond Si and Ge nanowires
论文作者
论文摘要
Si和GE(以及Sige合金)的亚稳态二角相对于立方二角)表现出了出色的光学性能。后者是最稳定,最受欢迎的:在极端条件下工作的六边形钻石Si或GE而没有被证明是微不足道的。然而,最近,已经证明了增加六角形钻石IV纳米线的可能性,引起了人们对这种系统的关注。基于第一原则计算,我们表明在六边形 - 二角相中暴露于Si和ge纳米线中暴露的典型面的表面能比立方相比。通过利用一种基于最新的原子间潜力和简单的几何模型的协同方法,我们研究了两个阶段中纳米线的相对稳定性,在半径上,纳米线的相对稳定性,突出了表面相关的驱动力,并在最近的实验中讨论了其相关性。我们还探索了Si和Ge Core-shell纳米线与六角核的稳定性(由GAAS的Si Nanowires制成,用于GE纳米线)。在这种情况下,六角形外壳在立方体上的稳定性也受到连接两个阶段的界面相关的能量成本的青睐。有趣的是,我们的计算表明,六角形壳的临界半径远低于最近实验中报道的壳壳,这表明存在大型动力学屏障,从而允许在亚稳态相中扩大电线。
The metastable hexagonal-diamond phase of Si and Ge (and of SiGe alloys) displays superior optical properties with respect to the cubic-diamond one. The latter is the most stable and popular one: growing hexagonal-diamond Si or Ge without working at extreme conditions proved not to be trivial. Recently, however, the possibility of growing hexagonal-diamond group-IV nanowires has been demonstrated, attracting attention on such systems. Based on first-principle calculations we show that the surface energy of the typical facets exposed in Si and Ge nanowires is lower in the hexagonal-diamond phase than in cubic ones. By exploiting a synergic approach based also on a recent state-of-the-art interatomic potential and on a simple geometrical model, we investigate the relative stability of nanowires in the two phases up to few tens of nm in radius, highlighting the surface-related driving force and discussing its relevance in recent experiments. We also explore the stability of Si and Ge core-shell nanowires with hexagonal cores (made of GaP for Si nanowires, of GaAs for Ge nanowires). In this case, the stability of the hexagonal shell over the cubic one is also favored by the energy cost associated with the interface linking the two phases. Interestingly, our calculations indicate a critical radius of the hexagonal shell much lower than the one reported in recent experiments, indicating the presence of a large kinetic barrier allowing for the enlargement of the wire in a metastable phase.