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包含双高斯哈特里-福克算符的长程校正密度泛函理论用于高精度计算第二和第三周期原子的芯激发能(LC2gau-core-BOP)。

Long-range Corrected Density Functional Theory Including a Two-Gaussian Hartree-Fock Operator for High Accuracy Core-excitation Energy Calculations of Both the Second- and Third-Row Atoms (LC2gau-core-BOP).

作者信息

Ahn Dae-Hwan, Nakajima Takahito, Hirao Kimihiko, Song Jong-Won

机构信息

Department of Chemistry Education, Daegu University, Gyeongsan-si 113-8656, Korea.

RIKEN Center for Computational Science, Kobe 650-0047, Japan.

出版信息

J Chem Theory Comput. 2024 Aug 6. doi: 10.1021/acs.jctc.4c00651.

DOI:10.1021/acs.jctc.4c00651
PMID:39106473
Abstract

In the previous work, LCgau-core-BOP, which includes the short-range interelectronic Gaussian attenuating Hartree-Fock (HF) exchange to the long-range HF exchange, showed high accuracy core-excitation energies from 1s orbitals of the second-row atoms (1s → π*, 1s → σ*, 1s → *, and 1s → Rydberg), but underestimates the core-excitation energies from 1s orbitals of the third-row atoms. To improve this, we added one more Gaussian attenuating HF exchange to LCgau-core-BOP. We named it LC2gau-core-BOP, which achieves a mean absolute error (MAE) of 0.6 and 0.3 eV for core excitation energies of the second- and third-row atoms of the tested small molecules, respectively. We found that the inclusion of the short-range interelectronic HF exchange at a distance ranging from 0.2 to 0.6 a.u. contributes to the increase of performances on 1s orbital energy calculations of the second-row atoms, while the inclusion of more short-range interelectronic HF exchange at a distance ranging from 0 to 0.2 a.u. does to the increase of performance on 1s orbital energy calculations of the third-row atoms. It is notable that all of these improvements were accomplished using flexible Gaussian attenuating HF exchange inclusion. LC2gau-core-BOP shows deviations of less than 0.8 eV from experimental values for all of the core-excitation energies of the tested medium-size molecules consisting of thymine, oxazole, glycine, and dibenzothiophene sulfone. Moreover, by optimizing one parameter of the OP correlation functional, LC2gau-core-BOP provides atomization energies over the G3 test set with an accuracy comparable to that of B3LYP.

摘要

在之前的工作中,LCgau-core-BOP(它包含从短程电子间高斯衰减哈特里-福克(HF)交换到长程HF交换)对于第二周期原子1s轨道的芯激发能(1s→π*、1s→σ*、1s→*和1s→里德堡态)显示出高精度,但低估了第三周期原子1s轨道的芯激发能。为了改进这一点,我们在LCgau-core-BOP中又添加了一个高斯衰减HF交换。我们将其命名为LC2gau-core-BOP,对于所测试小分子的第二和第三周期原子的芯激发能,它分别实现了0.6和0.3电子伏特的平均绝对误差(MAE)。我们发现,包含距离在0.2至0.6原子单位范围内的短程电子间HF交换有助于提高第二周期原子1s轨道能量计算的性能,而包含距离在0至0.2原子单位范围内更多的短程电子间HF交换则有助于提高第三周期原子1s轨道能量计算的性能。值得注意的是,所有这些改进都是通过灵活地包含高斯衰减HF交换来实现的。对于由胸腺嘧啶、恶唑、甘氨酸和二苯并噻吩砜组成的所测试中等大小分子的所有芯激发能,LC2gau-core-BOP与实验值的偏差小于0.8电子伏特。此外,通过优化OP相关泛函的一个参数,LC2gau-core-BOP在G3测试集上提供的原子化能精度与B3LYP相当。

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