Grimme Stefan, Antony Jens, Schwabe Tobias, Mück-Lichtenfeld Christian
Theoretische Organische Chemie, Organisch-Chemisches Institut der Universität Münster, Corrensstrasse 40, D-48149 Münster, Germany.
Org Biomol Chem. 2007 Mar 7;5(5):741-58. doi: 10.1039/b615319b. Epub 2007 Jan 26.
Kohn-Sham density functional theory (KS-DFT) is nowadays the most widely used quantum chemical method for electronic structure calculations in chemistry and physics. Its further application in e.g. supramolecular chemistry or biochemistry has mainly been hampered by the inability of almost all current density functionals to describe the ubiquitous attractive long-range van der Waals (dispersion) interactions. We review here methods to overcome this defect, and describe in detail a very successful correction that is based on damped -C(6).R(-6) potentials (DFT-D). As examples we consider the non-covalent inter- and intra-molecular interactions in unsaturated organic molecules (so-called pi-pi stacking in benzenes and dyes), in biologically relevant systems (nucleic acid bases/pairs, proteins, and 'folding' models), between fluorinated molecules, between curved aromatics (corannulene and carbon nanotubes) and small molecules, and for the encapsulation of methane in water clusters. In selected cases we partition the interaction energies into the most relevant contributions from exchange-repulsion, electrostatics, and dispersion in order to provide qualitative insight into the binding character.
科恩-沈密度泛函理论(KS-DFT)如今是化学和物理学中电子结构计算最广泛使用的量子化学方法。它在例如超分子化学或生物化学中的进一步应用主要受到几乎所有当前密度泛函无法描述普遍存在的吸引性长程范德华(色散)相互作用的阻碍。我们在此回顾克服这一缺陷的方法,并详细描述基于阻尼 -C(6).R(-6) 势(DFT-D)的一种非常成功的校正方法。作为示例,我们考虑不饱和有机分子中的非共价分子间和分子内相互作用(苯和染料中所谓的 π-π 堆积)、生物相关体系(核酸碱基/对、蛋白质和“折叠”模型)、氟化分子之间、弯曲芳烃(碗烯和碳纳米管)与小分子之间的相互作用,以及甲烷在水簇中的包封。在选定的情况下,我们将相互作用能划分为交换排斥、静电和色散的最相关贡献,以便对结合特性提供定性的见解。