Vydrov Oleg A, Scuseria Gustavo E
Department of Chemistry, Rice University, Houston, TX 77005, USA.
J Chem Phys. 2004 Nov 1;121(17):8187-93. doi: 10.1063/1.1794633.
The Perdew-Zunger self-interaction-corrected density functional theory (SIC-DFT) was implemented self-consistently using a quasi-Newton direct minimization method. We calculated SIC-DFT energies for a number of atoms and molecules using various approximate density functionals, including hybrids. Self-interaction errors (SIE) of these functionals were compared and analyzed in terms of contributions from valence and core orbitals. We also calculated enthalpies of formation of the standard G2-1 set of 55 molecules and found that self-interaction-correction (SIC) improves agreement with experiment only for the LSDA functional, while all other functionals show worse performance upon introducing SIC. This is the first systematic study of the effect of SIC on thermochemical properties. We found no direct connection between the magnitude of the SIE contained in a functional and its performance for thermochemistry. Approximate functionals with large self-interaction errors can accurately reproduce enthalpies of formation. Our results do not support the popular belief that a smaller SIE of hybrid functionals is the main reason for their higher accuracy.
采用拟牛顿直接最小化方法自洽地实现了佩德韦-曾格自相互作用校正密度泛函理论(SIC-DFT)。我们使用包括杂化泛函在内的各种近似密度泛函计算了多个原子和分子的SIC-DFT能量。从价轨道和芯轨道的贡献方面对这些泛函的自相互作用误差(SIE)进行了比较和分析。我们还计算了55个分子的标准G2-1集的生成焓,发现自相互作用校正(SIC)仅对局域密度近似(LSDA)泛函改善了与实验的一致性,而所有其他泛函在引入SIC后表现更差。这是对SIC对热化学性质影响的首次系统研究。我们发现泛函中所含SIE的大小与其热化学性能之间没有直接联系。具有大自相互作用误差的近似泛函可以准确地再现生成焓。我们的结果不支持普遍认为杂化泛函较小的SIE是其更高精度的主要原因这一观点。