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Localized orbital corrections applied to thermochemical errors in density functional theory: The role of basis set and application to molecular reactions

机译:密度泛函理论中应用于热化学误差的局部轨道校正:基础集的作用及其在分子反应中的应用

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摘要

This paper is a logical continuation of the 22 parameter, localized orbital correction (LOC) methodology that we developed in previous papers [R. A. Friesner et al., J. Chem. Phys. 125, 124107 (2006); E. H. Knoll and R. A. Friesner, J. Phys. Chem. B 110, 18787 (2006).] This methodology allows one to redress systematic density functional theory (DFT) errors, rooted in DFT’s inherent inability to accurately describe nondynamical correlation. Variants of the LOC scheme, in conjunction with B3LYP (denoted as B3LYP-LOC), were previously applied to enthalpies of formation, ionization potentials, and electron affinities and showed impressive reduction in the errors. In this paper, we demonstrate for the first time that the B3LYP-LOC scheme is robust across different basis sets [6-31G*, 6-311++G(3df,3pd), cc-pVTZ, and aug-cc-pVTZ] and reaction types (atomization reactions and molecular reactions). For example, for a test set of 70 molecular reactions, the LOC scheme reduces their mean unsigned error from 4.7 kcal∕mol [obtained with B3LYP∕6-311++G(3df,3pd)] to 0.8 kcal∕mol. We also verified whether the LOC methodology would be equally successful if applied to the promising M05-2X functional. We conclude that although M05-2X produces better reaction enthalpies than B3LYP, the LOC scheme does not combine nearly as successfully with M05-2X than with B3LYP. A brief analysis of another functional, M06-2X, reveals that it is more accurate than M05-2X but its combination with LOC still cannot compete in accuracy with B3LYP-LOC. Indeed, B3LYP-LOC remains the best method of computing reaction enthalpies.
机译:本文是我们在先前论文中开发的22参数局部轨道校正(LOC)方法的逻辑延续。 A.Friesner等人,《化学杂志》物理125,124107(2006); E. H. Knoll和R. A. Friesner,J. Phys。化学B 110,18787(2006)。]这种方法可以纠正系统密度泛函理论(DFT)的错误,该错误源于DFT固有的无法准确描述非动力学相关性的原因。 LOC方案的变体与B3LYP(表示为B3LYP-LOC)一起,先前已应用于形成焓,电离势和电子亲和力,并显示出显着的误差降低。在本文中,我们首次证明了B3LYP-LOC方案在不同的基础集[6-31G *,6-311 ++ G(3df,3pd),cc-pVTZ和aug-cc-pVTZ中具有鲁棒性]和反应类型(雾化反应和分子反应)。例如,对于70个分子反应的测试集,LOC方案将其平均无符号误差从4.7 kcal ∕ mol [用B3LYP ∕ 6-311 ++ G(3df,3pd)获得]降低到0.8 kcal ∕ mol。我们还验证了,如果将LOC方法应用于有前途的M05-2X功能,是否同样会成功。我们得出的结论是,尽管M05-2X产生的反应焓比B3LYP好,但LOC方案与M05-2X的结合并不比B3LYP成功。对另一个功能M06-2X的简要分析显示,它比M05-2X更准确,但它与LOC的组合仍无法与B3LYP-LOC媲美。实际上,B3LYP-LOC仍然是计算反应焓的最佳方法。

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