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Determining the range of forces in empirical many-body potentials using first-principles calculations

机译:使用第一原理计算确定经验多体势中的作用力范围

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A computationally efficient and accurate description of interatomic interactions is indispensable to the fidelity of atomistic simulations. In the development of popular empirical potentials, it is assumed that atoms separated beyond a certain cut-off distance have negligible interatomic forces and hence may be safely ignored in the force calculations. This arbitrary, and yet common, practice of force truncation is undoubtedly nd hoc and is not grounded in the physics of the interactions. With the advent of fast computers and accurate first-principles calculations, it is now feasible to determine what this cut-off distance should be. In this work. employing a first-principles calculation based on density functional theory and the local density approximation (LDA) we probe the extent of interatomic forces in aluminium caused by a variety of defect types. The forces on neighbours to these defects, obtained from first-principles calculations, were then compared with the corresponding values from many short- and long-range semiempirical literature potentials. It is clear that none of these semiempirical potentials can reproduce the LDA results, although the newest potentials that use LDA force data for potential determination come close. The results also indicate that nearest-neighbour forces are dominant for zero- and one-dimensional defects. Only for a free surface did we find forces at more distant neighbours to be comparable in magnitude. Using the new LDA force data for the single vacancy, we modify a literature potential to improve significantly the agreement with the first-principles calculations. [References: 27]
机译:原子间相互作用的逼真度对原子间相互作用的计算有效且准确的描述是必不可少的。在流行的经验潜能的发展中,假定分离超过一定截止距离的原子具有可忽略的原子间力,因此可以在力计算中安全地忽略它。强制截断的这种任意而又普遍的实践无疑是偶然的,并且不以交互作用的物理学为基础。随着快速计算机的出现和准确的第一性原理计算,现在确定该截止距离应该是可行的。在这项工作中。利用基于密度泛函理论和局部密度近似(LDA)的第一性原理计算,我们探究了各种缺陷类型引起的铝中原子间力的程度。然后,将通过第一性原理计算获得的邻近缺陷上的力与来自许多短期和长期半经验文献潜力的相应值进行比较。显然,尽管使用LDA力数据进行电势确定的最新电势接近,但这些半经验电势均无法再现LDA结果。结果还表明,零和一维缺陷中最邻近的力占主导地位。仅在自由表面上,我们发现在较远的邻居处的力在大小上是可比的。使用针对单个空缺的新的LDA力数据,我们修改了文献资料,以显着改善与第一性原理计算的一致性。 [参考:27]

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