Departamento de Física Teórica, Atómica y Optica, Universidad de Valladolid, Valladolid 47071, Spain.
J Chem Phys. 2010 Sep 7;133(9):094302. doi: 10.1063/1.3479396.
The structure of 55-atom Li-Na and Na-K nanoalloys is determined through combined empirical potential (EP) and density functional theory (DFT) calculations. The potential energy surface generated by the EP model is extensively sampled by using the basin hopping technique, and a wide diversity of structural motifs is reoptimized at the DFT level. A composition comparison technique is applied at the DFT level in order to make a final refinement of the global minimum structures. For dilute concentrations of one of the alkali atoms, the structure of the pure metal cluster, namely, a perfect Mackay icosahedron, remains stable, with the minority component atoms entering the host cluster as substitutional impurities. At intermediate concentrations, the nanoalloys adopt instead a core-shell polyicosahedral (p-Ih) packing, where the element with smaller atomic size and larger cohesive energy segregates to the cluster core. The p-Ih structures show a marked prolate deformation, in agreement with the predictions of jelliumlike models. The electronic preference for a prolate cluster shape, which is frustrated in the 55-atom pure clusters due to the icosahedral geometrical shell closing, is therefore realized only in the 55-atom nanoalloys. An analysis of the electronic densities of states suggests that photoelectron spectroscopy would be a sufficiently sensitive technique to assess the structures of nanoalloys with fixed size and varying compositions.
通过结合经验势(EP)和密度泛函理论(DFT)计算,确定了 55 原子 Li-Na 和 Na-K 纳米合金的结构。通过使用 basin hopping 技术对 EP 模型生成的势能面进行广泛采样,并在 DFT 水平上重新优化了广泛的结构基元。在 DFT 水平上应用成分比较技术,对全局最小结构进行最终细化。对于一种碱金属原子的稀浓度,纯金属团簇的结构,即完美的 Mackay 二十面体,保持稳定,少数成分原子作为替位杂质进入主体团簇。在中间浓度下,纳米合金采用核壳多二十面体(p-Ih)堆积,其中原子尺寸较小且结合能较大的元素分离到团簇核心。p-Ih 结构表现出明显的长椭变形,与类凝胶模型的预测一致。由于二十面体几何壳的封闭,纯 55 原子团簇中存在的有利于长椭球体形状的电子偏好,只有在 55 原子纳米合金中才能实现。对电子态密度的分析表明,光电子能谱将是一种足够灵敏的技术,可以评估具有固定尺寸和变化组成的纳米合金的结构。