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用于混合金/汞分子和纯 Au 和 Hg 团簇性质的 GGA 与范德华密度泛函结果。

GGA versus van der Waals density functional results for mixed gold/mercury molecules and pure Au and Hg cluster properties.

机构信息

Instituto de Ciencia de Materiales, CSIC, 28049, Madrid, Spain.

出版信息

Phys Chem Chem Phys. 2011 Dec 14;13(46):20863-70. doi: 10.1039/c1cp22455g. Epub 2011 Oct 17.

Abstract

Dispersion forces, which originate the van der Waals interaction, are indispensable to describe numerous systems and processes, including metallic clusters and surfaces. In this work is used an efficient numerical implementation in the context of density functional theory of a non-local correlation van der Waals density functional (vdW-DF) to self-consistently solve the structure and electronic properties of small molecules (ArAu, AuF, ArAuF, ArCuF, Au(2)Hg, Au(2)Hg(2)), as well as Au(2-15) and Hg(2-6) clusters. Three different flavours of that vdW-DF exchange-correlation (xc) functional are tested. The results for small molecules are compared with those from the generalized gradient approximation (GGA) of Perdew, Burke, and Ernzerhof (PBE) against experiments or highly accurate quantum chemical calculations. It is found that, on average, vdw-DF improves PBE binding energies and overestimates bond distances. Our vdW-DF calculations lead to planar structures as lowest energy isomers of Au(14) and Au(15) clusters. The calculated polarizability of Au(2-15) isomers dramatically decreases in passing from two-dimensional (2D) to three-dimensional (3D) equilibrium geometries. A combination of the density of states of two vdw-DF planar isomers of the Au(12)(-) anion is proposed to explain the photoelectron spectroscopy experiments. Contrary to PBE results, the vdW-DF calculations predict that the O(h) isomer of Hg(6) is more stable than the C(2v) one.

摘要

色散力起源于范德华相互作用,对于描述许多系统和过程是必不可少的,包括金属团簇和表面。在这项工作中,我们在密度泛函理论的背景下使用了一种有效的非局域相关范德华密度泛函(vdW-DF)的数值实现,以自洽地求解小分子(ArAu、AuF、ArAuF、ArCuF、Au(2)Hg、Au(2)Hg(2))以及 Au(2-15)和 Hg(2-6)团簇的结构和电子性质。测试了该 vdW-DF 交换相关(xc)函数的三种不同风味。将小分子的结果与广义梯度近似(GGA)的 Perdew、Burke 和 Ernzerhof(PBE)的结果进行比较,以与实验或高精度量子化学计算进行比较。结果发现,平均而言,vdw-DF 提高了 PBE 的结合能并高估了键距。我们的 vdW-DF 计算导致平面结构作为 Au(14)和 Au(15)团簇的最低能量异构体。Au(2-15)异构体的极化率从二维(2D)到三维(3D)平衡几何形状急剧下降。提出了两种 vdw-DF 平面异构体的态密度组合来解释光电子能谱实验。与 PBE 结果相反,vdW-DF 计算预测 O(h)异构体的 Hg(6)比 C(2v)异构体更稳定。

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