Department of Physics and Research Institute for Basic Sciences, Kyung Hee University, Seoul, Korea.
J Phys Condens Matter. 2010 Dec 22;22(50):505301. doi: 10.1088/0953-8984/22/50/505301. Epub 2010 Nov 24.
Using first principles density functional theory, we investigate the structural, electronic and magnetic properties of isolated and bundled Mo(6)S(9 - x)I(x) nanowires with x = 3, 4.5, and 6. The unit cell of each system contains two Mo(6) octahedra decorated with S and I atoms and two S(3) linkages. Due to the bistability of each sulfur linkage, finite-length nanowires or nanowire bundles exhibit many stable structural minima. We explore the structural stability, elastic behavior and electronic structure at all these minima for each composition x. We find that the axial strain and inter-wire interaction in bundles significantly modify the electronic structure. The most intriguing changes occur in nanowires with x = 4.5 and 6, which change from metal to semiconductor or undergo a magnetic transition upon axially stretching or compressing the nanowires or upon changing the inter-wire separation.
使用第一性原理密度泛函理论,我们研究了孤立和捆绑的 Mo(6)S(9 - x)I(x)纳米线(其中 x = 3、4.5 和 6)的结构、电子和磁性性质。每个系统的单元包含两个被 S 和 I 原子修饰的 Mo(6)八面体和两个 S(3)键合。由于每个硫键的双稳定性,有限长度的纳米线或纳米线束表现出许多稳定的结构极小值。我们探索了每个组成部分 x 的所有这些极小值处的结构稳定性、弹性行为和电子结构。我们发现,轴向应变和束中的互连线相互作用显著改变了电子结构。最有趣的变化发生在 x = 4.5 和 6 的纳米线上,它们在轴向拉伸或压缩纳米线或改变互连线之间的分离时,从金属转变为半导体或发生磁性转变。