论文标题

钒和niobium的剪切特性中密度功能理论的轨道定位误差

Orbital localization error of density functional theory in shear properties of vanadium and niobium

论文作者

Wang, Y. X., Geng, Hua Y., Wu, Q., Chen, Xiang R.

论文摘要

据信,密度功能理论(DFT)很好地描述了S,P和D轨道的大多数元素,除了某些具有强烈局部和相关的价电子的材料。在这项工作中,我们发现包括LDA,GGA和META-GGA在内的广泛使用的交换相关(XC)功能大大低估了V和NB的剪切模量和相位稳定性。另一方面,通常适合相关系统的高级混合功能在这两种简单的金属中完全失败。由于GGA中的轨道定位误差,这种引人注目的故障被揭示出来,这进一步被混合功能降低。当应用于V和NB时,DFT+U和Van der Waals功能的类似失败也证实了该观察结果。为了解决这个问题,提出了DFT+J的半经验方法,该方法可以通过促进现场交换来定位电子。此外,可以观察到,包括密度衍生物略微改善了半局部功能的性能,元ggga的表现均优于GGA,而后者大于LDA。该发现表明,在V和NB中完全将轨道定位误差(主要来自D轨道)和DeLocalization误差(主要来自S和P轨道词)完全删除轨道定位误差(主要来自S和P轨道)的目的,将高阶密度衍生物包含在Laplacian级别之外的可能性和必要性,以便获得对其电子结构的更好描述。相同的策略可以应用于其他D电子系统和F电子系统。

It is believed that the density functional theory (DFT) describes most elements with s, p and d orbitals very well, except some materials that having strongly localized and correlated valence electrons. In this work, we find that the widely employed exchange-correlation (xc) functionals, including LDA, GGA and meta-GGA, underestimate the shear modulus and phase stability of V and Nb greatly. The advanced hybrid functional that is usually better for correlated system, on the other hand, completely fails in these two simple metals. This striking failure is revealed due to the orbital localization error in GGA, which is further deteriorated by hybrid functionals. This observation is corroborated by a similar failure of DFT+U and van der Waals functionals when applied to V and Nb. To remedy this problem, an semi-empirical approach of DFT+J is proposed which can delocalize electrons by facilitating the on-site exchange. Furthermore, it is observed that including density derivatives slightly improves the performance of the semi-local functionals, with meta-GGA outperforms GGA, and the latter is better than LDA. This discovery indicates the possibility and necessity to include higher-order density derivatives beyond the Laplacian level for the purpose to remove the orbital localization error (mainly from d orbitals) and delocalization error (mainly from s and p orbitals) completely in V and Nb, so that to achieve a better description of their electronic structures. The same strategy can be applied to other d electron system and f electron system.

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