Density functional theory augmented with an empirical dispersion term. Interaction energies and geometries of 80 noncovalent complexes compared with ab initio quantum mechanics calculations
Top Cited Papers
- 21 December 2006
- journal article
- research article
- Published by Wiley in Journal of Computational Chemistry
- Vol. 28 (2) , 555-569
- https://doi.org/10.1002/jcc.20570
Abstract
Standard density functional theory (DFT) is augmented with a damped empirical dispersion term. The damping function is optimized on a small, well balanced set of 22 van der Waals (vdW) complexes and verified on a validation set of 58 vdW complexes. Both sets contain biologically relevant molecules such as nucleic acid bases. Results are in remarkable agreement with reference high‐level wave function data based on the CCSD(T) method. The geometries obtained by full gradient optimization are in very good agreement with the best available theoretical reference. In terms of the standard deviation and average errors, results including the empirical dispersion term are clearly superior to all pure density functionals investigated—B‐LYP, B3‐LYP, PBE, TPSS, TPSSh, and BH‐LYP—and even surpass the MP2/cc‐pVTZ method. The combination of empirical dispersion with the TPSS functional performs remarkably well. The most critical part of the empirical dispersion approach is the damping function. The damping parameters should be optimized for each density functional/basis set combination separately. To keep the method simple, we optimized mainly a single factor, sR, scaling globally the vdW radii. For good results, a basis set of at least triple‐ζ quality is required and diffuse functions are recommended, since the basis set superposition error seriously deteriorates the results. On average, the dispersion contribution to the interaction energy missing in the DFT functionals examined here is about 15 and 100% for the hydrogen‐bonded and stacked complexes considered, respectively. © 2006 Wiley Periodicals, Inc. J Comput Chem 28: 555–569, 2007Keywords
This publication has 91 references indexed in Scilit:
- An Efficient a Posteriori Treatment for Dispersion Interaction in Density-Functional-Based Tight BindingJournal of Chemical Theory and Computation, 2005
- Unexpectedly Strong Energy Stabilization Inside the Hydrophobic Core of Small Protein Rubredoxin Mediated by Aromatic Residues: Correlated Ab Initio Quantum Chemical CalculationsJournal of the American Chemical Society, 2005
- Potential Energy Surface of the Cytosine Dimer: MP2 Complete Basis Set Limit Interaction Energies, CCSD(T) Correction Term, and Comparison with the AMBER Force FieldThe Journal of Physical Chemistry B, 2004
- Comparative assessment of a new nonempirical density functional: Molecules and hydrogen-bonded complexesThe Journal of Chemical Physics, 2003
- Exchange functionals with improved long-range behavior and adiabatic connection methods without adjustable parameters: The mPW and mPW1PW modelsThe Journal of Chemical Physics, 1998
- Density functional results for isotropic and anisotropic multipole polarizabilities and C6, C7, and C8 Van der Waals dispersion coefficients for moleculesThe Journal of Chemical Physics, 1997
- A density-functional study of the intermolecular interactions of benzeneThe Journal of Chemical Physics, 1996
- Determinants of a protein foldJournal of Molecular Biology, 1987
- Quantum chemical and statistical thermodynamic investigations of anesthetic activity. 3. The interaction between CH4, CH3Cl, CH2Cl2, CHCl3, CCl4, and an O—H … O hydrogen bondCanadian Journal of Chemistry, 1984
- A Simplification of the Hartree-Fock MethodPhysical Review B, 1951