准粒子
微扰理论(量子力学)
一致性(知识库)
物理
摄动(天文学)
算法
材料科学
凝聚态物理
计算机科学
量子力学
数学
离散数学
超导电性
作者
Mark van Schilfgaarde,Takao Kotani,Sergey V. Faleev
标识
DOI:10.1103/physrevlett.96.226402
摘要
In past decades the scientific community has been looking for a reliable first-principles method to predict the electronic structure of solids with high accuracy. Here we present an approach which we call the quasiparticle self-consistent $GW$ approximation. It is based on a kind of self-consistent perturbation theory, where the self-consistency is constructed to minimize the perturbation. We apply it to selections from different classes of materials, including alkali metals, semiconductors, wide band gap insulators, transition metals, transition metal oxides, magnetic insulators, and rare earth compounds. Apart from some mild exceptions, the properties are very well described, particularly in weakly correlated cases. Self-consistency dramatically improves agreement with experiment, and is sometimes essential. Discrepancies with experiment are systematic, and can be explained in terms of approximations made.
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