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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Does the DFT Self-Interaction Error Affect Energies Calculated in Proteins with Large QM Systems?
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Does the DFT Self-Interaction Error Affect Energies Calculated in Proteins with Large QM Systems?

机译:使用大型QM系统,DFT自相互作用误差会影响蛋白质中计算的能量吗?

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摘要

We have examined how the self-interaction error in density-functional theory (DFT) calculations affects energies calculated on large systems (600-1000 atoms) involving several charged groups. We employ 18 different quantum mechanical (QM) methods, including Hartree Foci, as well as pure, hybrid, and range-separated DFT methods. They are used to calculate reaction and activation energies for three different protein models in vacuum, in a point-charge surrounding, or with a continuum-solvent model. We show that pure DFT functionals give rise to a significant delocalization of the charges in charged groups in the protein, typically by similar to 0.1 e, as evidenced from the Mulliken charges. This has a dear effect on how the surroundings affect calculated reaction and activation energies, indicating that these methods should be avoided for DFT calculations on large systems. Fortunately, methods such as CAM-B3LYP, BHLYP, and M06-2X give results that agree within a few kilojoules per mole, especially when the calculations are performed in a point-charge surrounding. Therefore, we recommend these methods to estimate the effect of the surroundings with large QM systems (but other QM methods may be used to study the intrinsic reaction and activation energies).
机译:我们已经研究了密度泛函理论(DFT)计算中的自相互作用误差如何影响包含多个带电基团的大型系统(600-1000原子)上计算出的能量。我们采用18种不同的量子力学(QM)方法,包括Hartree Foci,以及纯,混合和范围分隔DFT方法。它们用于计算三种不同蛋白质模型在真空中,在点电荷周围或在连续溶剂模型中的反应和活化能。我们表明,纯的DFT功能会导致蛋白质带电基团中电荷的显着离域化,通常与0.1 e相似,如Mulliken电荷所证明。这对周围环境如何影响所计算的反应和活化能具有重大影响,表明在大型系统上进行DFT计算时应避免使用这些方法。幸运的是,诸如CAM-B3LYP,BHLYP和M06-2X之类的方法得出的结果在每摩尔几千焦耳范围内是一致的,尤其是在点电荷环境下进行计算时。因此,我们建议使用这些方法来估计大型QM系统对周围环境的影响(但其他QM方法也可用于研究内在反应和活化能)。

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