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Intrinsic uncertainty on ab initio phase diagram and compound formation energy calculations: BCC Mo-Fe as a test case

机译:从头算相图和化合物形成能的内在不确定性:BCC Mo-Fe作为测试案例

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摘要

Ab initio electronic structure calculations, within the Kohn-Sham scheme of the density functional theory, are often considered reliable and a powerful tool to provide ground state information on intermetallic compounds. More recently, it has been used in multi-scale intermetallic phase diagram calculations with particular importance when experimental data is lacking. In spite of this recent success, they rely on basic choices of the computational solution of the complicated quantum mechanical problem. Therefore, the calculated phase diagrams may depend on these choices. Here, we concentrate on the influence of some methodological aspects of the ab initio calculations on the resulting phase diagram, for a given statistical mechanics approach. We use the Full Potential-Linear Augmented Plane Wave and the Projector Augmented Wave Methods to perform electronic structure calculations combined with the cluster variation method in the irregular tetrahedron approximation to calculate the BCC Mo-Fe phase diagram. It is shown that all calculated phase diagrams present similar qualitative features (an asymmetric miscibility gap), but quantitative variations are found depending on some of the basic assumptions adopted for the electronic structure calculations. Based on these results, a "natural" accuracy of the order of±1kJmol~(-1) can be estimated for ab initio compound formation energies.
机译:在密度泛函理论的Kohn-Sham方案内,从头算起电子结构计算通常被认为是可靠的并且是提供金属间化合物基态信息的有力工具。最近,在缺乏实验数据的情况下,它已被用于多尺度金属间相图的计算中,尤其重要。尽管最近取得了成功,但他们仍依赖于复杂量子力学问题的计算解决方案的基本选择。因此,计算出的相图可能取决于这些选择。在此,对于给定的统计力学方法,我们重点研究从头计算的某些方法论方面对所得相图的影响。我们使用全势线性增强平面波和投影仪增强波方法在不规则四面体近似中结合簇变化方法进行电子结构计算,以计算BCC Mo-Fe相图。结果表明,所有计算出的相图都具有相似的定性特征(不对称的溶混间隙),但是根据电子结构计算所采用的一些基本假设,发现了数量上的变化。基于这些结果,对于从头开始的化合物形成能,可以估计出大约±1kJmol〜(-1)的“自然”精度。

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