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Charge localization in a diamine cation provides a test of energy functionals and self-interaction correction

机译:二胺阳离子中的电荷局部化提供了对能量功能和自相互作用校正的测试

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摘要

Density functional theory (DFT) is widely applied in calculations of molecules and materials. Yet, it suffers from a well-known over-emphasis on charge delocalization arising from self-interaction error that destabilizes localized states. Here, using the symmetric diamine N,N′-dimethylpiperazine as a model, we have experimentally determined the relative energy of a state with positive charge localized on one of the two nitrogen atoms, and a state with positive charge delocalized over both nitrogen atoms. The charge-localized state was found to be 0.33 (0.04) eV higher in energy than the charge-delocalized state. This provides an important test of theoretical approaches to electronic structure calculations. Calculations with all DFT functionals commonly used today, including hybrid functionals with exact exchange, fail to predict a stable charge-localized state. However, the application of an explicit self-interaction correction to a semi-local functional identifies both states and gives relative energy in excellent agreement with both experiment and CCSD(T) calculations.
机译:密度泛函理论(DFT)被广泛应用于分子和材料的计算。然而,它受到众所周知的过分强调电荷自域化的影响,该电荷自域化是由使局部状态不稳定的自相互作用误差引起的。在此,以对称的二胺N,N'-二甲基哌嗪为模型,我们通过实验确定了两个氮原子之一上带正电荷的状态和两个氮原子上带离电荷的状态的相对能量。发现电荷局部化状态的能量比电荷局部化状态高0.33(0.04)eV。这为电子结构计算的理论方法提供了重要的检验。使用当今常用的所有DFT功能(包括具有精确交换的混合功能)的计算都无法预测稳定的电荷局部状态。但是,将显式自交互校正应用于半局部函数可以识别两种状态,并给出相对能量,与实验和CCSD(T)计算都非常吻合。

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