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首页> 外文期刊>The Journal of Chemical Physics >Extreme density-driven delocalization error for a model solvated-electron system
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Extreme density-driven delocalization error for a model solvated-electron system

机译:模型溶剂化电子系统的极端密度驱动的离域误差

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摘要

Delocalization (or charge-transfer) error is one of the scarce but spectacular failures of density-functional theory. It is particularly apparent in extensively delocalized molecules, and manifests in the calculation of bandgaps, reaction barriers, and dissociation limits. Even though delocalization error is always present in the self-consistent electron density, the differences from reference densities are often quite subtle and the error tends to be driven by the exchange-correlation energy expression. In this article, we propose a model system (the Kevan model) where approximate density functionals predict dramatically different charge distributions because of delocalization error. The model system consists of an electron trapped in a water hexamer and is a finite representation of an experimentally observed class of solids: electrides. The Kevan model is of fundamental interest because it allows the estimation of charge transfer error without recourse to fractional charge calculations, but our results are also relevant in the context of the modeling of confined electrons in density-functional theory.
机译:离域(或电荷转移)误差是密度泛函理论中稀缺但引人注目的失败之一。它在广泛离域的分子中特别明显,并表现在带隙,反应势垒和解离极限的计算中。即使在自洽电子密度中始终存在离域误差,但与参考密度的差异通常仍然很小,并且误差倾向于由交换相关能量表达式驱动。在本文中,我们提出了一个模型系统(Kevan模型),其中近似密度泛函预测了由于离域误差而导致的电荷分布显着不同。该模型系统由捕获在六聚体中的电子组成,是对实验观察到的固体类别的有限表示:电子。 Kevan模型具有根本的意义,因为它可以在不求助于分数电荷计算的情况下估算电荷转移误差,但我们的结果在密度泛函理论中对受限电子建模的​​上下文中也具有相关性。

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