Prasad Viki Kumar, Otero-de-la-Roza Alberto, DiLabio Gino A
Department of Chemistry, University of British Columbia , 3247 University Way, Kelowna, British Columbia, Canada V1V 1V7.
Faculty of Management, University of British Columbia , 1137 Alumni Avenue, Kelowna, British Columbia, Canada V1V 1V7.
J Chem Theory Comput. 2018 Feb 13;14(2):726-738. doi: 10.1021/acs.jctc.7b01158. Epub 2018 Jan 16.
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.
我们提出了一种基于原子中心势(ACP)的计算方法,用于对大分子系统进行高效且准确的结构建模。ACP是原子中心单电子势,其函数形式与有效核势相同。在近期的工作中,我们表明ACP可用于对基态波函数和电子能量进行修正,以弥补基础模型化学中的不足。在本工作中,我们给出了针对氢、碳、氮和氧原子的ACP,当与色散校正的哈特里 - 福克方法(HF-D3)和最小基组(缩放的MINI或MINIs)结合使用时,这些ACP经过专门设计,能够预测准确的非共价结合能以及分子间和分子内几何结构。例如,对于S22x5和S66x8基准集,结合的HF-D3/MINIs-ACP方法表现出色,相对于高度相关的全基组数据,平均绝对误差分别为0.36和0.28 kcal/mol。对于所有考察的基准集,与未校正的HF-D3/MINIs相比,应用ACP后误差显著降低。此外,HF-D3/MINIs-ACP的计算成本仅略高于最小基组HF计算,并且可与任何使用高斯基组和有效核势的分子量子化学电子结构程序一起使用。