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首页> 外文期刊>The Journal of Chemical Physics >Self-consistent embedding theory for locally correlated configuration interaction wave functions in condensed matter
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Self-consistent embedding theory for locally correlated configuration interaction wave functions in condensed matter

机译:凝聚态局部相关构型相互作用波函数的自洽嵌入理论

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We present new developments on a density-based embedding strategy for the electronic structure of localized feature in periodic,metallic systems [see T.Kltiner et ai,J.Chem.Phys.116,42(2002),and references therein].The total system is decomposed into an embedded cluster and a background,where the background density is regarded as fixed.Its effect on the embedded cluster is modeled as a one-electron potential derived from density functional theory.We first discuss details on the evaluation of the various contributions to the embedding potential and provide a strategy to incorporate the use of ultrasoft pseudopotentials in a consistent fashion.The embedding potential is obtained self-consistently with respect to both the total and embedded cluster densities in the embedding region,within the framework of a frozen background density.A strategy for accomplishing this self-consistency in a numerically stable manner is presented.Finally,we demonstrate how dynamical correlation effects can be treated within this embedding framework via the multireference singles and doubles configuration interaction method.Two applications of the embedding theory are presented.The first example considers a Cu dimer embedded in the(111)surface of Cu,where we explore the effects of different models for the kinetic energy potential.We find that the embedded Cu density is reasonably well-described using simple models for the kinetic energy.The second,more challenging example involves the adsorption of Co on the(111)surface of Cu,which has been probed experimentally with scanning tunneling microscopy [H.C.Manoharan et al,Nature(London)403,512(2000)].In contrast to Kohn-Sham density functional theory,our embedding approach predicts the correct spin-compensated ground state.
机译:我们提出了基于密度的嵌入策略,用于周期性金属系统中局部特征的电子结构的新进展[请参阅T.Kltiner等人,J.Chem.Phys.116,42(2002),以及其中的参考文献]。将整个系统分解为一个嵌入式簇和一个背景,其中背景密度被认为是固定的。它对嵌入式簇的影响被建模为源自密度泛函理论的单电子势。对嵌入潜力的各种贡献,并提供了以一致的方式并入超软伪势的使用的策略。嵌入潜力是相对于嵌入区域中的总和嵌入簇密度在一个框架内自洽地获得的。冻结背景密度。提出了一种以数值稳定的方式实现这种自洽的策略。最后,我们演示了如何实现动态相关效应在嵌入框架中,通过多引用单双配置交互作用方法对其进行了处理。提出了嵌入理论的两个应用。第一个示例考虑嵌入在Cu(111)表面的Cu二聚体,我们探讨了不同模型对于我们发现使用简单的动能模型可以很好地描述嵌入的Cu密度。第二个更具挑战性的示例涉及Co在Cu(111)表面的吸附用扫描隧道显微镜[HCManoharan等,Nature(London)403,512(2000)]。与Kohn-Sham密度泛函理论相反,我们的嵌入方法可预测正确的自旋补偿基态。

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