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首页> 外文期刊>The Journal of Chemical Physics >Dispersion-correcting potentials can significantly improve the bond dissociation enthalpies and noncovalent binding energies predicted by density-functional theory
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Dispersion-correcting potentials can significantly improve the bond dissociation enthalpies and noncovalent binding energies predicted by density-functional theory

机译:色散校正电势可显着改善键离解焓和密度泛函理论预测的非共价结合能

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Dispersion-correcting potentials (DCPs) are atom-centered Gaussian functions that are applied in a manner that is similar to effective core potentials. Previous work on DCPs has focussed on their use as a simple means of improving the ability of conventional density-functional theory methods to predict the binding energies of noncovalently bonded molecular dimers. We show in this work that DCPs developed for use with the LC-ωPBE functional along with 6-31+G(2d,2p) basis sets are capable of simultaneously improving predicted noncovalent binding energies of van der Waals dimer complexes and covalent bond dissociation enthalpies in molecules. Specifically, the DCPs developed herein for the C, H, N, and O atoms provide binding energies for a set of 66 noncovalently bonded molecular dimers (the "S66" set) with a mean absolute error (MAE) of 0.21 kcal/mol, which represents an improvement of more than a factor of 10 over unadorned LC-ωPBE/6-31+G(2d,2p) and almost a factor of two improvement over LC-ωPBE/6-31+G(2d,2p) used in conjunction with the "D3" pairwise dispersion energy corrections. In addition, the DCPs reduce theMAE of calculated XH and X-Y (X,Y = C, H, N, O) bond dissociation enthalpies for a set of 40 species from 3.2 kcal/mol obtained with unadorned LC-ωPBE/6-31+G(2d,2p) to 1.6 kcal/mol. Our findings demonstrate that broad improvements to the performance of DFT methods may be achievable through the use of DCPs.
机译:色散校正电势(DCP)是原子中心的高斯函数,以类似于有效核心电势的方式应用。 DCP的先前工作集中在将它们用作提高常规密度泛函理论方法预测非共价键合分子二聚体结合能的能力的简单方法。我们在这项工作中表明,为与LC-ωPBE功能以及6-31 + G(2d,2p)基集一起使用而开发的DCP能够同时改善范德华二聚体复合物和共价键解离焓的预测非共价结合能在分子中。具体而言,本文针对C,H,N和O原子开发的DCP为一组66个非共价键合的分子二聚体(“ S66”组)提供了结合能,平均绝对误差(MAE)为0.21 kcal / mol,与未经修饰的LC-ωPBE/ 6-31 + G(2d,2p)相比,提高了10倍以上,几乎比所使用的LC-ωPBE/ 6-31 + G(2d,2p)提高了两倍。结合“ D3”成对色散能量校正。此外,对于未经修饰的LC-ωPBE/ 6-31 +获得的一组40种物质,DCP降低了计算的XH和XY(X,Y = C,H,N,O)键解离焓的MAE(从3.2 kcal / mol) G(2d,2p)至1.6 kcal / mol。我们的发现表明,通过使用DCP可以实现DFT方法性能的广泛改进。

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