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拉伸键误差的起伏:将反应势垒高度的佩德韦-宗格自相互作用校正分析扩展至局域自旋密度近似之外。

The rise and fall of stretched bond errors: Extending the analysis of Perdew-Zunger self-interaction corrections of reaction barrier heights beyond the LSDA.

作者信息

Singh Yashpal, Peralta Juan E, Jackson Koblar A

机构信息

Department of Physics, Central Michigan University, Mt. Pleasant, Michigan 48859, USA.

Department of Physics and Science of Advanced Materials PhD Program, Central Michigan University, Mt. Pleasant, Michigan 48859, USA.

出版信息

J Chem Phys. 2024 Mar 28;160(12). doi: 10.1063/5.0179261.

Abstract

Incorporating self-interaction corrections (SIC) significantly improves chemical reaction barrier height predictions made using density functional theory methods. We present a detailed orbital-by-orbital analysis of these corrections for three semi-local density functional approximations (DFAs) situated on the three lowest rungs of Jacob's ladder of approximations. The analysis is based on Fermi-Löwdin Orbital Self-Interaction Correction (FLOSIC) calculations performed at several steps along the reaction pathway from the reactants (R) to the transition state (TS) to the products (P) for four representative reactions selected from the BH76 benchmark set. For all three functionals, the major contribution to self-interaction corrections of the barrier heights can be traced to stretched bond orbitals that develop near the TS configuration. The magnitude of the ratio of the self-exchange-correlation energy to the self-Hartree energy (XC/H) for a given orbital is introduced as an indicator of one-electron self-interaction error. XC/H = 1.0 implies that an orbital's self-exchange-correlation energy exactly cancels its self-Hartree energy and that the orbital, therefore, makes no contribution to the SIC in the FLOSIC scheme. For the practical DFAs studied here, XC/H spans a range of values. The largest values are obtained for stretched or strongly lobed orbitals. We show that significant differences in XC/H for corresponding orbitals in the R, TS, and P configurations can be used to identify the major contributors to the SIC of barrier heights and reaction energies. Based on such comparisons, we suggest that barrier height predictions made using the strongly constrained and appropriately normed meta-generalized gradient approximation may have attained the best accuracy possible for a semi-local functional using the Perdew-Zunger SIC approach.

摘要

纳入自相互作用校正(SIC)可显著改善使用密度泛函理论方法进行的化学反应势垒高度预测。我们对位于近似阶梯雅各布天梯最低三级的三种半局域密度泛函近似(DFA)的这些校正进行了详细的逐轨道分析。该分析基于对从反应物(R)到过渡态(TS)再到产物(P)的反应路径上几个步骤进行的费米 - 洛丁轨道自相互作用校正(FLOSIC)计算,这几个步骤是针对从BH76基准集中选取的四个代表性反应。对于所有这三种泛函,势垒高度自相互作用校正的主要贡献可追溯到在TS构型附近形成的拉伸键轨道。引入给定轨道的自交换关联能与自哈特里能之比(XC/H)作为单电子自相互作用误差的指标。XC/H = 1.0意味着轨道的自交换关联能恰好抵消其自哈特里能,因此该轨道在FLOSIC方案中对SIC无贡献。对于此处研究的实用DFA,XC/H跨越一系列值。拉伸或强叶状轨道获得的XC/H值最大。我们表明,R、TS和P构型中相应轨道的XC/H存在显著差异,可用于识别势垒高度和反应能量SIC的主要贡献者。基于此类比较,我们认为使用强约束且适当归一化的元广义梯度近似进行的势垒高度预测,对于使用佩德韦 - 曾格SIC方法的半局域泛函而言,可能已达到最佳精度。

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