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Resolution of identity approximation for the Coulomb term in molecular and periodic systems

机译:分子和周期系统中库仑项恒等式的解析

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A new formulation of resolution of identity approximation for the Coulomb term is presented, which uses atom-centered basis and auxiliary basis functions and treats molecular and periodic systems of any dimensionality on an equal footing. It relies on the decomposition of an auxiliary charge density into charged and chargeless components. Applying the Coulomb metric under periodic boundary conditions constrains the explicit form of the charged part. The chargeless component is determined variationally and converged Coulomb lattice sums needed for its determination are obtained using chargeless linear combinations of auxiliary basis functions. The lattice sums are partitioned in nearand far-field portions which are treated through an analytical integration scheme employing twoand three-center electron repulsion integrals and multipole expansions, respectively, operating exclusively in real space. Our preliminary implementation within the TURBOMOLE program package demonstrates consistent accuracy of the method across molecular and periodic systems. Using common auxiliary basis sets the errors of the approximation are small, in average about 20 μhartree per atom, for both molecular and periodic systems.
机译:提出了一种新的库仑项恒等式近似解决方案,该方案使用原子中心基函数和辅助基函数,并在相等的基础上处理任何维数的分子和周期系统。它依赖于辅助电荷密度分解为带电和不带电的组件。在周期性边界条件下应用库仑度量会限制带电零件的显式形式。可变地确定无电荷分量,并使用辅助基函数的无电荷线性组合来获得其确定所需的会聚库仑晶格和。晶格和被划分为近场和远场部分,通过分别使用两个和三个中心电子排斥积分和多极膨胀的解析积分方案进行处理,这些积分仅在真实空间中运行。我们在TURBOMOLE程序包中的初步实现证明了该方法在分子和周期系统中的一致性。使用通用辅助基础集,对于分子系统和周期系统,近似误差很小,平均每个原子约20μhartree。

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