Department of Physics, Chongqing University, Chongqing 400030, People's Republic of China.
J Phys Condens Matter. 2010 May 5;22(17):175501. doi: 10.1088/0953-8984/22/17/175501. Epub 2010 Apr 7.
First-principles calculations based on density functional theory were performed to study the stable geometries, electronic structure and magnetic properties of the adsorption of a single Mn atom on a graphitic ZnO sheet and a (9, 0) single-wall ZnO nanotube. For the graphitic ZnO sheet, the Mn atom prefers to reside above the center of a hexagon (H site), with a relatively large binding energy of 1.24 eV. The H site is also the most stable site for adsorption of an Mn atom inside the ZnO nanotube, with a large binding energy of 1.47 eV. In both of these cases, the total magnetic moment is 5.0 μ(B) per Mn atom, which is the same as that of a free Mn atom. When the Mn atom is adsorbed outside the tube, the most energetically favorable site is the atop oxygen site. The magnetic moment is 3.19 μ(B) for this configuration. The smaller magnetic moment is mainly due to the strong p-d mixing of O and Mn orbitals. The different adsorption behaviors are related to the curvatures of the nanostructures.
基于密度泛函理论的第一性原理计算研究了单个 Mn 原子在石墨 ZnO 片和(9,0)单壁 ZnO 纳米管上吸附的稳定几何形状、电子结构和磁性。对于石墨 ZnO 片,Mn 原子优先位于六边形中心(H 位),结合能较大,为 1.24 eV。H 位也是 Mn 原子在 ZnO 纳米管内吸附的最稳定位置,结合能较大,为 1.47 eV。在这两种情况下,每个 Mn 原子的总磁矩为 5.0 μB,与自由 Mn 原子相同。当 Mn 原子吸附在管外时,最有利的位置是顶氧位。对于这种构型,磁矩为 3.19 μB。较小的磁矩主要是由于 O 和 Mn 轨道的强烈 p-d 混合。不同的吸附行为与纳米结构的曲率有关。