Department of Physics, Penn State University, Berks Campus, Reading, Pennsylvania 19610-6009, USA.
J Comput Chem. 2011 Jun;32(8):1711-20. doi: 10.1002/jcc.21753. Epub 2011 Mar 1.
Atomic force fields for simulating copper, silver, and gold clusters and nanoparticles are developed. Potential energy functions are obtained for both monatomic and binary metallic systems using an embedded atom method. Many cluster configurations of varying size and shape are used to constrain the parametrization for each system. Binding energies for these training clusters were computed using density functional theory (DFT) with the Perdew-Wang exchange-correlation functional in the generalized gradients approximation. Extensive testing shows that the many-body potentials are able to reproduce the DFT energies for most of the structures that were included in the training set. The force fields were used to calculate surface energies, bulk structures, and thermodynamic properties. The results are in good agreement with the DFT values and consistent with the available experimental data.
开发了用于模拟铜、银和金团簇和纳米粒子的原子力场。使用嵌入原子方法为单原子和二元金属系统获得了势能函数。使用各种不同大小和形状的团簇配置来约束每个系统的参数化。使用具有广义梯度近似的 Perdew-Wang 交换相关泛函的密度泛函理论 (DFT) 计算了这些训练团簇的结合能。广泛的测试表明,多体势能够再现大多数包含在训练集中的结构的 DFT 能量。该力场用于计算表面能、体相结构和热力学性质。结果与 DFT 值吻合较好,并且与可用的实验数据一致。