Department of Physics, Central Michigan University, Mount Pleasant, MI 48859;
Department of Physics, Temple University, Philadelphia, PA 19122;
Proc Natl Acad Sci U S A. 2020 May 26;117(21):11283-11288. doi: 10.1073/pnas.1921258117. Epub 2020 May 11.
We gauge the importance of self-interaction errors in density functional approximations (DFAs) for the case of water clusters. To this end, we used the Fermi-Löwdin orbital self-interaction correction method (FLOSIC) to calculate the binding energy of clusters of up to eight water molecules. Three representative DFAs of the local, generalized gradient, and metageneralized gradient families [i.e., local density approximation (LDA), Perdew-Burke-Ernzerhof (PBE), and strongly constrained and appropriately normed (SCAN)] were used. We find that the overbinding of the water clusters in these approximations is not a density-driven error. We show that, while removing self-interaction error does not alter the energetic ordering of the different water isomers with respect to the uncorrected DFAs, the resulting binding energies are corrected toward accurate reference values from higher-level calculations. In particular, self-interaction-corrected SCAN not only retains the correct energetic ordering for water hexamers but also reduces the mean error in the hexamer binding energies to less than 14 meV/[Formula: see text] from about 42 meV/[Formula: see text] for SCAN. By decomposing the total binding energy into many-body components, we find that large errors in the two-body interaction in SCAN are significantly reduced by self-interaction corrections. Higher-order many-body errors are small in both SCAN and self-interaction-corrected SCAN. These results indicate that orbital-by-orbital removal of self-interaction combined with a proper DFA can lead to improved descriptions of water complexes.
我们评估了自相互作用误差在密度泛函近似(DFA)中对水分子团的重要性。为此,我们使用费米-洛温丁轨道自相互作用修正方法(FLOSIC)计算了多达八个水分子团的结合能。使用了三种具有代表性的局部、广义梯度和广义梯度混合家族的 DFA(即局域密度近似(LDA)、Perdew-Burke-Ernzerhof(PBE)和强约束和适当归一化(SCAN))。我们发现,这些近似中的水分子团的过结合不是密度驱动的误差。我们表明,虽然消除自相互作用误差不会改变不同水分子异构体相对于未修正 DFA 的能量排序,但得到的结合能会向更高阶计算的准确参考值修正。特别是,自相互作用修正的 SCAN 不仅保留了六聚水分子的正确能量排序,而且将六聚体结合能的平均误差从 SCAN 的约 42 meV/[Formula: see text]降低到小于 14 meV/[Formula: see text]。通过将总结合能分解成多体成分,我们发现 SCAN 中二阶相互作用的大误差通过自相互作用修正得到显著降低。在 SCAN 和自相互作用修正的 SCAN 中,高阶多体误差都很小。这些结果表明,轨道间自相互作用的消除与适当的 DFA 相结合,可以导致对水分子复合物的描述得到改善。