Kenneth S. Pitzer Center for Theoretical Chemistry, Department of Chemistry, University of California, Berkeley, California 94720, United States.
Department of Chemistry, University of California, Berkeley, California 94720, United States.
J Chem Theory Comput. 2023 May 23;19(10):2827-2841. doi: 10.1021/acs.jctc.3c00089. Epub 2023 May 8.
The pseudopotential (PP) approximation is one of the most common techniques in computational chemistry. Despite its long history, the development of custom PPs has not tracked with the explosion of different density functional approximations (DFAs). As a result, the use of PPs with exchange/correlation models for which they were not developed is widespread, although this practice is known to be theoretically unsound. The extent of PP inconsistency errors (PPIEs) associated with this practice has not been systematically explored across the types of energy differences commonly evaluated in chemical applications. We evaluate PPIEs for a number of PPs and DFAs across 196 chemically relevant systems of both transition-metal and main-group elements, as represented by the W4-11, TMC34, and S22 data sets. Near the complete basis set limit, these PPs are found to cleanly approach all-electron (AE) results for noncovalent interactions but introduce root-mean-squared errors (RMSEs) upwards of 15 kcal mol into predictions of covalent bond energies for a number of popular DFAs. We achieve significant improvements through the use of empirical atom- and DFA-specific PP corrections, indicating considerable systematicity of the PPIEs. The results of this work have implications for chemical modeling in both molecular contexts and for DFA design, which we discuss.
赝势(PP)近似是计算化学中最常用的技术之一。尽管它历史悠久,但自定义 PP 的发展并没有跟上不同密度泛函近似(DFA)的爆炸式增长。因此,尽管这种做法在理论上是站不住脚的,但广泛使用了并非为其开发的交换/相关模型的 PP。这种做法与 PP 不一致误差(PPIE)的程度尚未在化学应用中通常评估的各种能量差类型中系统地探索。我们评估了许多 PP 和 DFA 在 196 个过渡金属和主族元素的化学相关体系中的 PPIE,这些体系由 W4-11、TMC34 和 S22 数据集表示。在完全基组极限附近,这些 PP 被发现可以干净地接近非共价相互作用的全电子(AE)结果,但对于许多流行的 DFA,它们会在预测共价键能时引入高达 15 kcal/mol 的均方根误差(RMSE)。通过使用经验原子和 DFA 特定的 PP 校正,我们实现了显著的改进,这表明 PPIE 具有相当大的系统性。这项工作的结果对分子环境中的化学建模和 DFA 设计都有影响,我们将对此进行讨论。