2011Chinese Physics BRequires access

Geometries, stabilities, and electronic properties of Be-doped gold clusters: a density functional theory study

Dongdong Chen, Xiao‐Yu Kuang, Yaru Zhao, Peng Shao, Yanfang Li

Open publisher page 17 citations

Abstract

We have systematically investigated the geometrical structures, relative stabilities and electronic properties of small bimetallic Au n Be ( n = 1, 2, …, 8) clusters using a density functional method at BP86 level. The optimized geometries reveal that the impurity beryllium atom dramatically affects the structures of the Au n clusters. The averaged binding energies, fragmentation energies, second-order difference of energies, the highest occupied-lowest unoccupied molecular orbital energy gaps and chemical hardness are investigated. All of them exhibit a pronounced odd—even alternation, manifesting that the clusters with even number of gold atoms possess relatively higher stabilities. Especially, the linear Au 2 Be cluster is magic cluster with the most stable chemical stability. According to the natural population analysis, it is found that charge-transferring direction between Au atom and Be atom changes at the size of n = 4.

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What this paper is about

We have systematically investigated the geometrical structures, relative stabilities and electronic properties of small bimetallic Au n Be ( n = 1, 2, …, 8) clusters using a density functional method at BP86 level. The optimized geometries reveal that the impurity beryllium atom dramatically affects the structures of the Au n clusters. The averaged binding energies, fragmentation energies, second-order difference of energies, the highest occupied-lowest unoccupied molecular orbital energy gaps and chemical hardness are investigated. All of them exhibit a pronounced odd—even alternation, manifesting that the clusters with even number of gold atoms possess relatively higher stabilities. Especially, the linear Au 2 Be cluster is magic cluster with the most stable chemical stability. According to the natural population analysis, it is found that charge-transferring direction between Au atom and Be atom changes at the size of n = 4.

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Available abstract

We have systematically investigated the geometrical structures, relative stabilities and electronic properties of small bimetallic Au n Be ( n = 1, 2, …, 8) clusters using a density functional method at BP86 level. The optimized geometries reveal that the impurity beryllium atom dramatically affects the structures of the Au n clusters. The averaged binding energies, fragmentation energies, second-order difference of energies, the highest occupied-lowest unoccupied molecular orbital energy gaps and chemical hardness are investigated. All of them exhibit a pronounced odd—even alternation, manifesting that the clusters with even number of gold atoms possess relatively higher stabilities. Especially, the linear Au 2 Be cluster is magic cluster with the most stable chemical stability. According to the natural population analysis, it is found that charge-transferring direction between Au atom and Be atom changes at the size of n = 4.

Key concepts: Cluster (spacecraft), Binding energy, Atom (system on chip), Materials science, Atomic physics, Density functional theory, Bimetallic strip, Molecular physics

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