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密度泛函理论在综合轨道能量计算中的应用。

Density functional theory for comprehensive orbital energy calculations.

机构信息

National Institute of Materials Science and Technology, 1-2-1 Sengen, Tsukuba, Ibaraki 305-0047, Japan.

出版信息

J Chem Phys. 2013 Aug 14;139(6):064102. doi: 10.1063/1.4817404.

DOI:10.1063/1.4817404
PMID:23947838
Abstract

This study reveals the reason core 1s orbital energies and the highest occupied molecular orbital (HOMO) energies of hydrogen and rare gas atoms are underestimated by long-range corrected (LC) density functional theory (DFT), which quantitatively reproduces the HOMO energies of other systems and the lowest unoccupied molecular orbital (LUMO) energies. Applying the pseudospectral regional (PR) self-interaction correction (SIC) drastically improved the underestimated orbital energies in LC-DFT calculations, while maintaining or improving the accuracies in the calculated valence HOMO and LUMO energies. This indicates that the self-interaction error in exchange functionals causes the underestimations of core 1s orbital energies and the HOMO energies of hydrogen and rare gas atoms in LC-DFT calculations. To clarify the reason for the improvement, the fractional occupation dependences of total electronic energies and orbital energies were examined. The calculated results clearly showed that the LC-PR functional gives almost linear dependences of total electronic energies for a slight decrease in the occupation number of core 1s orbitals, although this linear dependence disappears for significant decrease due to the shrinking of exchange self-interaction regions. It was also clarified that the PRSIC hardly affects the occupation number dependences of the total electronic energies and orbital energies for the fractional occupations of HOMOs and LUMOs. As a result, it was concluded that core orbital energies are obtained accurately by combining LC-DFT with PRSIC.

摘要

本研究揭示了长程校正(LC)密度泛函理论(DFT)低估氢和稀有气体原子的核心 1s 轨道能和最高占据分子轨道(HOMO)能的原因,该理论定量再现了其他体系的 HOMO 能和最低未占据分子轨道(LUMO)能。应用赝谱区域(PR)自相互作用校正(SIC)极大地改善了 LC-DFT 计算中低估的轨道能,同时保持或提高了计算价 HOMO 和 LUMO 能的精度。这表明交换泛函中的自相互作用误差导致 LC-DFT 计算中核心 1s 轨道能和氢及稀有气体原子的 HOMO 能被低估。为了阐明改进的原因,检查了总电子能和轨道能的分数占据依赖性。计算结果清楚地表明,LC-PR 泛函对于核心 1s 轨道占据数的轻微减少给出了总电子能的几乎线性依赖性,尽管由于交换自相互作用区域的收缩,这种线性依赖性在显著减少时消失。还澄清了 PRSIC 几乎不会影响 HOMO 和 LUMO 的分数占据的总电子能和轨道能的占据数依赖性。因此,结论是通过将 LC-DFT 与 PRSIC 相结合,可以准确获得核心轨道能。

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