Laboratory for Computational Molecular Design, Institut des Sciences et Ingénierie Chimiques, Ecole Polytechnique Fédérale de Lausanne, CH-1015 Lausanne, Switzerland.
J Phys Chem A. 2011 Jun 2;115(21):5467-77. doi: 10.1021/jp202560d. Epub 2011 May 10.
As the simplest variant of the valence bond (VB) theory, the block-localized wave function (BLW) method defines the intermediate electron-localized state self-consistently at the DFT level and can be used to explore the nature of intermolecular interactions in terms of several physically intuitive energy components. Yet, it is unclear how the dispersion interaction affects such a kind of energy decomposition analysis (EDA) as standard density functional approximations neglect the long-range dispersion attractive interactions. Three electron densities corresponding to the initial electron-localized state, optimal electron-localized state, and final electron-delocalized state are involved in the BLW-ED approach; a density-dependent dispersion correction, such as the recently proposed dDXDM approach, can thus uniquely probe the impact of the long-range dispersion effect on EDA results computed at the DFT level. In this paper, we incorporate the dDXDM dispersion corrections into the BLW-ED approach and investigate a range of representative systems such as hydrogen-bonding systems, acid-base pairs, and van der Waals complexes. Results show that both the polarization and charge-transfer energies are little affected by the inclusion of the long-range dispersion effect, which thus can be regarded as an independent energy component in EDA.
作为价键(VB)理论的最简单变体,块局部波函数(BLW)方法在 DFT 水平上自洽地定义了中间电子局域态,可以用几个物理直观的能量分量来探索分子间相互作用的性质。然而,目前尚不清楚色散相互作用如何影响这种能量分解分析(EDA),因为标准密度泛函近似忽略了长程色散吸引相互作用。BLW-ED 方法涉及三个电子密度,分别对应初始电子局域态、最佳电子局域态和最终电子离域态;因此,一种密度依赖的色散校正,如最近提出的 dDXDM 方法,可以独特地探测长程色散效应对在 DFT 水平上计算的 EDA 结果的影响。在本文中,我们将 dDXDM 色散校正纳入 BLW-ED 方法,并研究了一系列具有代表性的系统,如氢键系统、酸碱对和范德华复合物。结果表明,包括长程色散效应后,极化能和电荷转移能几乎没有变化,因此可以将其视为 EDA 中的一个独立能量分量。