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Orbital-optimized opposite-spin scaled second-order correlation: An economical method to improve the description of open-shell molecules

机译:轨道优化的反自旋成比例的二阶相关:一种改进开壳分子描述的经济方法

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Coupled-cluster methods based on Brueckner orbitals are well known to resolve the problems of symmetry breaking and spin contamination that are often associated with Hartree-Fock orbitals. However, their computational cost is large enough to prevent application to large molecules. Here the authors present a simple approximation where the orbitals are optimized with the mean-field energy plus a correlation energy taken as the opposite-spin component of the second-order many-body correlation energy, scaled by an empirically chosen parameter (recommended as 1.2 for general applications). This "optimized second-order opposite-spin" (abbreviated as O2) method requires fourth-order computation on each orbital iteration. O2 is shown to yield predictions of structure and frequencies for closed-shell molecules that are very similar to scaled second-order Moller-Plesset methods. However, it yields substantial improvements for open-shell molecules, where problems with spin contamination and symmetry breaking are shown to be greatly reduced. (c) 2007 American Institute of Physics.
机译:众所周知,基于Brueckner轨道的耦合簇方法可以解决通常与Hartree-Fock轨道相关的对称性破坏和自旋污染的问题。但是,它们的计算成本大到足以防止应用于大分子。在这里,作者提出了一个简单的近似方法,其中使用平均场能量加相关能量作为二阶多体相关能量的反自旋分量来优化轨道,并根据经验选择的参数进行缩放(建议为1.2)用于一般应用)。这种“优化的二阶反向自旋”(缩写为O2)方法需要在每次轨道迭代中进行四阶计算。 O2被证明可以预测闭壳分子的结构和频率,这与定标的二阶Moller-Plesset方法非常相似。但是,它对开壳分子产生了实质性的改善,其中自旋污染和对称性破坏的问题已大大减少。 (c)2007年美国物理研究所。

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