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Describing static correlation in bond dissociation by Kohn-Sham density functional theory

机译:用Kohn-Sham密度泛函理论描述键解离中的静态相关性

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We show that density functional theory within the RPA (random phase approximation for the exchange-correlation energy) provides a correct description of bond dissociation in H-2 in a spin-restricted Kohn-Sham formalism, i.e., without artificial symmetry breaking. We present accurate adiabatic connection curves both at equilibrium and beyond the Coulson-Fisher point. The strong curvature at large bond length implies important static (left-right) correlation, justifying modern hybrid functional constructions but also demonstrating their limitations. Although exact at infinite separation and accurate near the equilibrium bond length, the RPA dissociation curve displays unphysical repulsion at larger but finite bond lengths. Going beyond the RPA by including the exact exchange kernel (RPA+X), we find a similar repulsion. We argue that this deficiency is due to the absence of double excitations in adiabatic linear response theory. Further analyzing the H-2 dissociation limit we show that the RPA+X is not size consistent, in contrast to the RPA. (C) American Institue of Physics.
机译:我们显示RPA(交换相关能量的随机相近似)中的密度泛函理论提供了自旋受限的Kohn-Sham形式主义中H-2中键解离的正确描述,即没有人为的对称性破坏。我们在平衡点和超出Coulson-Fisher点的位置都显示了精确的绝热连接曲线。大键长处的强曲率意味着重要的静态(左右)相关性,证明了现代混合功能结构的合理性,但同时也证明了它们的局限性。尽管在无限分离时精确且在平衡键长附近准确,但RPA解离曲线在较大但有限的键长下显示出非物理排斥。通过包含精确的交换内核(RPA + X),超越了RPA,我们发现了类似的排斥。我们认为这种缺陷是由于绝热线性响应理论中没有双重激发引起的。进一步分析H-2的解离极限,我们发现RPA + X与RPA相比大小不一致。 (C)美国物理研究所。

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