ChemistryMedicine

S. Grimme, J. Antony, Tobias Schwabe, Christian Mück‐Lichtenfeld

2007.2.21ORGANIC & BIOMOLECULAR CHEMISTRY

DOI: 10.1039/b615319b

tlooto Summary

Methods to overcome the inability of almost all current density functionals to describe the ubiquitous attractive long-range van der Waals (dispersion) interactions are reviewed, and a very successful correction is described that is based on damped -C(6).R(-6) potentials (DFT-D).

Abstract

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.

Citation format

GRIMME, S., et al. Density functional theory with dispersion corrections for supramolecular structures, aggregates, and complexes of (bio)organic molecules. ORGANIC & BIOMOLECULAR CHEMISTRY, 2007, 5 5: 741–58.