Jackson K, Ma L, Yang M, Jellinek J
Physics Department, Central Michigan University, Mt. Pleasant, Michigan 48859, USA.
J Chem Phys. 2008 Oct 14;129(14):144309. doi: 10.1063/1.2978169.
The atomic-level response of Na(N) clusters, N = 2-20, to a small static external electric field is studied using a method that decomposes the total cluster dipole moment and polarizability into contributions from nonoverlapping atomic volumes. The atomic dipole moments and polarizabilities are, in turn, partitioned into the so-called dipole and charge-transfer components. The former characterizes a dielectric type of a response, whereas the latter represents a metallic type of a response. Analysis of the atomic polarizabilities points to their strong dependence on the site, or location, of the atoms within the structure of the clusters. Surface atoms have larger polarizabilities than the interior ones. Overall, the fraction of the charge-transfer component of the averaged atomic polarizabilities is an increasing function of the cluster size. The charge-transfer component is also responsible for the structure/shape driven variations in the atomic polarizabilities. The anisotropy of the total polarizabilities correlates with the shape anisotropy of the clusters.
使用一种将总团簇偶极矩和极化率分解为来自非重叠原子体积贡献的方法,研究了N = 2 - 20的Na(N)团簇对小静态外电场的原子级响应。原子偶极矩和极化率又被划分为所谓的偶极和电荷转移分量。前者表征介电类型的响应,而后者代表金属类型的响应。对原子极化率的分析表明,它们强烈依赖于团簇结构中原子的位置。表面原子比内部原子具有更大的极化率。总体而言,平均原子极化率的电荷转移分量的比例是团簇尺寸的增函数。电荷转移分量还导致原子极化率随结构/形状的变化。总极化率的各向异性与团簇的形状各向异性相关。