首页> 外文期刊>The Journal of Chemical Physics >The accuracy of current density functionals for the calculation of electric field gradients: A comparison with ab initio methods for HCl and CuCl
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The accuracy of current density functionals for the calculation of electric field gradients: A comparison with ab initio methods for HCl and CuCl

机译:电流密度函数在电场梯度计算中的准确性:与从头算方法比较HCl和CuCl

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The performance of current density functionals is analyzed in detail for the electric field gradients (EFG) of hydrogen chloride and copper chloride by comparison with ab initio methods and available experimental data. The range of density functionals applied shows good agreement with coupled cluster H and Gl field gradients for HCl, as has been demonstrated previously for other main-group element containing compounds. However, the performance of most density functionals is very poor for the Cu EFG in CuCl (EFG for Cu -0.44 a.u. at the coupled-cluster singles and doubles with perturbative triples [CCSD(T)] level, compared to, e.g., +0.54 a.u. at the B-LYP level). Only the "half-and-half" hybrid functionals give field gradients with the correct sign. The reason for the poor performance of the density functional theory is analyzed in detail comparing density functional with ab initio total electronic densities #rho#(r). Due to the conservation of the number of particles, a change in the valence part of the electron density can lead to changes in the core part of the density. Errors in valence electronic properties like the dipole moment and in core properties like the Cu and Cl EFGs may therefore be connected. In fact the errors in both properties show a distinct linear relationship, indicating that if the dipole moment is correctly described by density functionals, the Cu and Cl EFGs may be accurate as well. Furthermore, at the atomic level, electric field gradients are described with reasonable accuracy by current density functionals as calculations for the Cu ~2P excited state and the Cu~(2+) ~2D ground state show. A comparison between the different density functionals shows that the incorrect behavior of the electronic density appears to be mainly due to defects in the exchange part of the functional.
机译:通过从头算方法和可用的实验数据进行比较,详细分析了氯化氢和氯化铜的电场梯度(EFG)的电流密度泛函的性能。所应用的密度泛函的范围与HCl的簇H和G1场梯度耦合显示出良好的一致性,如先前对其他含主族元素的化合物所证明的。但是,对于CuCl中的Cu EFG,大多数密度泛函的性能非常差(与+0.54相比,在耦合集群单和双扰动三重[CCSD(T)]水平下,Cu -0.44 au的EFG) B-LYP级别的au)。只有“一半和一半”混合功能可以给出具有正确符号的场梯度。详细分析了密度泛函理论性能较差的原因,将密度泛函与从头算起的总电子密度#rho#(r)进行了比较。由于粒子数量的守恒,电子密度的价态部分的改变会导致密度的核心部分的改变。因此,可能会连接价电子特性(如偶极矩)和核心特性(如Cu和Cl EFG)中的误差。实际上,这两种性质的误差都显示出明显的线性关系,这表明,如果用密度泛函正确地描述了偶极矩,则Cu和Cl EFG也可能是准确的。此外,在原子水平上,通过电流密度函数以合理的精度描述了电场梯度,如对Cu〜2P激发态和Cu〜(2+)〜2D基态的计算所示。不同密度功能之间的比较表明,电子密度的不正确行为似乎主要是由于功能交换部分的缺陷所致。

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