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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Natural Orbitals for Wave Function Based Correlated Calculations Using a Plane Wave Basis Set
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Natural Orbitals for Wave Function Based Correlated Calculations Using a Plane Wave Basis Set

机译:基于平面波基集的基于波函数的相关计算的自然轨道

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We demonstrate that natural orbitals allow for reducing the computational cost of wave function based correlated calculations, especially for atoms and molecules in a large box, when a plane wave basis set under periodic boundary conditions is used. The employed natural orbitals are evaluated on the level of second-order Moller-Plesset perturbation theory (MP2), which requires a computational effort that scales as 0(N ), where N is a measure of the system size. Moreover, we find that a simple approximation reducing the scaling to O(A~4) yields orbitals that allow for a similar reduction of the number of virtual orbitals. The MP2 natural orbitals are applied to coupled-cluster singles and doubles (CCSD) as well as full configuration interaction Quantum Monte Carlo calculations of the H2 molecule to test our implementation. Finally, the atomization energies of the LiH molecule and solid are calculated on the level of MP2 and CCSD.
机译:我们证明,当使用周期性边界条件下设置的平面波基时,自然轨道可以降低基于波动函数的相关计算的计算成本,特别是对于大盒子中的原子和分子而言。在二阶Moller-Plesset微扰理论(MP2)的水平上评估所采用的自然轨道,该理论需要计算工作量缩放为0(N),其中N是系统大小的度量。此外,我们发现,将缩放比例缩放为O(A〜4)的简单近似方法会得出可近似减少虚拟轨道数量的轨道。 MP2自然轨道应用于H2分子的耦合簇单双态(CCSD)以及完全配置相互作用的量子蒙特卡洛计算,以测试我们的实现。最后,在MP2和CCSD的水平上计算LiH分子和固体的雾化能。

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