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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Atom-Centered Potentials with Dispersion-Corrected Minimal-Basis-Set Hartree-Fock: An Efficient and Accurate Computational Approach for Large Molecular Systems
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Atom-Centered Potentials with Dispersion-Corrected Minimal-Basis-Set Hartree-Fock: An Efficient and Accurate Computational Approach for Large Molecular Systems

机译:具有色散校正的最小基础设定Hartree-Fock的原子为本的潜力:大分子系统的高效准确计算方法

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摘要

We present a computational methodology based on atom-centered potentials (ACPs) for the efficient and accurate structural modeling of large molecular systems. ACPs are atom-centered one-electron potentials that have the same functional form as effective-core potentials. In recent works, we showed that ACPs can be used to produce a correction to the ground-state wave function and electronic energy to alleviate shortcomings in the underlying model chemistry. In this work, we present ACPs for H, C, N, and O atoms that are specifically designed to predict accurate non covalent binding energies and inter- and intramolecular geometries when combined with dispersion-corrected Hartree-Fock (HF-D3) and a minimal basis-set (scaled MINI or MINIs). For example, the combined HF-D3/MINIs-ACP method demonstrates excellent performance, with mean absolute errors of 0.36 and 0.28 kcal/mol for the S22x5 and S66x8 benchmark sets, respectively, relative to highly correlated complete basis-set data. The application of ACPs results in a significant decrease in error compared to uncorrected HF-D3/MINIs for all benchmark sets examined. In addition, HF-D3/MINIs-ACP, has a cost only slightly higher than a minimal-basis-set HF calculation and can be used with any electronic structure program for molecular quantum chemistry that uses Gaussian basis sets and effective-core potentials.
机译:我们基于原子为中心电位(ACPS)的计算方法,用于大分子系统的高效和准确的结构建模。 ACPS是以原子为中心的单电子电位,具有与有效核心电位相同的功能形式。在最近的作品中,我们表明ACP可用于对地面波函数和电子能量进行校正,以减轻潜在模型化学中的缺点。在这项工作中,我们为H,C,N和O原子提供ACP,该ACPS专门设计用于在与分散校正的Hartree-Fock(HF-D3)和A组合时预测准确的非共价结合能和和分子内几何形状。最小的基础设定(缩放迷你或迷你)。例如,组合的HF-D3 / MinIS-ACP方法分别示出了优异的性能,具有0.36和0.28kcal / mol的平均绝对误差,分别相对于高度相关的完整基础设置数据。与所有基准组的未校正HF-D3 / MINIS相比,ACP的应用导致错误的显着降低。此外,HF-D3 / MinIS-ACP的成本仅略高于最小基础设定的HF计算,并且可以与用于分子量子化学的任何电子结构程序一起使用,这些程序使用高斯基础集和有效核心电位。

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