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A method for predicting basins in the global optimization of nanoclusters with applications to Al(x)Cu(y)alloys

机译:一种预测纳米群纳米能源的盆地中盆地的方法,应用于Al(x)Cu(Y)合金

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摘要

The problem of obtaining the geometrical configuration of a molecule that minimizes its potential energy is a very complicated one for a series of applications, ranging from determining the structure of biological macromolecules to nanoclusters of atoms. Global optimization tools are available for this task, and many of them are based in performing successive local optimizations, where the starting geometries for these steps are determined by an intelligent algorithm. Here we develop a method to save computing time in the optimization of nanoclusters by predicting if a given minimum has been previously visited during local optimization steps. Our application to Cu-Al nanoalloys indicates that it is possible to save a substantial amount of computational cost. The application also reveals new promising Al(x)Cu(y)clusters and explain their stabilities in terms of the jellium model.
机译:获得最小化其势能的分子的几何构型的问题是一系列应用的一个非常复杂的一个,从确定生物大分子的结构到原子的纳米簇。 全局优化工具可用于此任务,其中许多是基于执行连续的本地优化,其中用于这些步骤的起始几何形状由智能算法确定。 在这里,我们通过预测在本地优化步骤期间先前访问过的最小值,开发一种节省纳米单元优化的计算时间。 我们在Cu-Al Nanooloys的应用表明可以节省大量的计算成本。 该应用程序还揭示了新的承诺Al(x)Cu(Y)群集,并在鸡皮模型方面解释它们的稳定性。

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