Srinivasan Aravind, Ray Asok K
Department of Physics, The University of Texas at Arlington, Arlington, Texas 76019, USA.
J Nanosci Nanotechnol. 2006 Jan;6(1):43-53.
Silicon fullerene like nanostructures with six carbon atoms on the surface of Si60 cages by substitution, as well as inside the cage at various symmetry orientations have been studied within the generalized gradient approximation to density functional theory. Full geometry optimizations have been performed without any symmetry constraints using the Gaussian 03 suite of programs and the LANL2DZ basis set. Thus, for the silicon atom, the Hay-Wadt pseudopotential with the associated basis set are used for the core electrons and the valence electrons, respectively. For the carbon atom, the Dunning/Huzinaga double zeta basis set is employed. Electronic and geometric properties of the nanostructures are presented and discussed in detail. It was found that optimized silicon-carbon fullerene like nanostructures have increased stability compared to bare Si60 cage and the stability depends on the orientation of carbon atoms, as well as on the nature of bonding between silicon and carbon atoms and also on the carbon-carbon bonding.
在密度泛函理论的广义梯度近似下,研究了Si60笼表面通过取代有六个碳原子的类硅富勒烯纳米结构,以及笼内各种对称取向的此类结构。使用高斯03程序套件和LANL2DZ基组,在没有任何对称性约束的情况下进行了完全几何优化。因此,对于硅原子,分别使用具有相关基组的Hay-Wadt赝势来处理芯电子和价电子。对于碳原子,采用Dunning/Huzinaga双ζ基组。详细介绍并讨论了纳米结构的电子和几何性质。结果发现,与裸Si60笼相比,优化后的类硅碳富勒烯纳米结构稳定性增强,且稳定性取决于碳原子的取向、硅与碳原子之间的键合性质以及碳-碳键合。