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Small Atomic Orbital Basis Set First-Principles Quantum Chemical Methods for Large Molecular and Periodic Systems: A Critical Analysis of Error Sources

机译:大分子和周期系统的小原子轨道基础集第一性原理量子化学方法:误差源的临界分析

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Abstract In quantum chemical computations the combination of Hartree?¢????Fock or a density functional theory (DFT) approximation with relatively small atomic orbital basis sets of double-zeta quality is still widely used, for example, in the popular B3LYP/6-31G* approach. In this Review, we critically analyze the two main sources of error in such computations, that is, the basis set superposition error on the one hand and the missing London dispersion interactions on the other. We review various strategies to correct those errors and present exemplary calculations on mainly noncovalently bound systems of widely varying size. Energies and geometries of small dimers, large supramolecular complexes, and molecular crystals are covered. We conclude that it is not justified to rely on fortunate error compensation, as the main inconsistencies can be cured by modern correction schemes which clearly outperform the plain mean-field methods.
机译:摘要在量子化学计算中,仍广泛使用Hartree?Fock或密度泛函理论(DFT)近似与相对较小的双Zeta质量的原子轨道基础集的组合,例如,在流行的B3LYP / 6-31G *方法。在这篇评论中,我们批判性地分析了这种计算中的两个主要误差源,即,一方面是基集叠加误差,另一方面是缺少伦敦色散相互作用。我们审查了纠正这些错误的各种策略,并提出了对大小相差较大的非共价键结合系统的典型计算。小二聚体,大超分子复合物和分子晶体的能量和几何形状都涵盖在内。我们得出结论,依靠幸运的误差补偿是没有道理的,因为可以通过明显优于普通均值场方法的现代校正方案来解决主要矛盾。

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