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Unravelling the origin of intermolecular interactions using absolutely localized molecular orbitals

机译:使用绝对定位的分子轨道揭示分子间相互作用的起源

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An energy decomposition analysis (EDA) method is proposed to isolate physically relevant components of the total intermolecular interaction energies such as the contribution from interacting frozen monomer densities, the energy lowering due to polarization of the densities, and the further energy lowering due to charge-transfer effects. This method is conceptually similar to existing EDA methods such as Morokuma analysis but includes several important new features. The first is a fully self-consistent treatment of the energy lowering due to polarization, which is evaluated by a self-consistent field calculation in which the molecular orbital coefficients are constrained to be block-diagonal (absolutely localized) in the interacting molecules to prohibit charge transfer. The second new feature is the ability to separate forward and back-donation in the charge-transfer energy term using a perturbative approximation starting from the optimized block-diagonal reference. The newly proposed EDA method is used to understand the fundamental aspects of intermolecular interactions such as the degree of covalency in the hydrogen bonding in water and the contributions of forward and back-donation in synergic bonding in metal complexes. Additionally, it is demonstrated that this method can be used to identify the factors controlling the interaction of the molecular hydrogen with open metal centers in potential hydrogen storage materials and the interaction of methane with rhenium complexes.
机译:提出了一种能量分解分析(EDA)方法来分离总分子间相互作用能的物理相关组成部分,例如相互作用的冻结单体密度的贡献,由于密度极化导致的能量降低以及由于电荷-极化导致的进一步能量降低转移效应。此方法在概念上与现有的EDA方法(例如Morokuma分析)相似,但包括几个重要的新功能。首先是对由于极化引起的能量降低进行完全自洽的处理,这是通过自洽场计算进行评估的,其中将分子轨道系数限制为相互作用的分子中的嵌段对角线(绝对局部化)以禁止电荷转移。第二个新功能是能够使用从优化的块对角线参考开始的扰动逼近来分离电荷转移能量项中的正向和反向捐赠。新提出的EDA方法用于了解分子间相互作用的基本方面,例如水中氢键的共价程度以及正向和反向捐赠对金属配合物中协同键的贡献。另外,证明了该方法可用于鉴定控制分子氢与潜在储氢材料中的开放金属中心的相互作用以及甲烷与rh络合物的相互作用的因素。

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