English

Double-hybrid density-functional theory applied to molecular crystals

Chemical Physics 2015-06-22 v1 Materials Science Computational Physics

Abstract

We test the performance of a number of two- and one-parameter double-hybrid approximations, combining semilocal exchange-correlation density functionals with periodic local second-order M{\o}ller-Plesset (LMP2) perturbation theory, for calculating lattice energies of a set of molecular crystals: urea, formamide, ammonia, and carbon dioxide. All double-hybrid methods perform better on average than the corresponding Kohn-Sham calculations with the same functionals, but generally not better than standard LMP2. The one-parameter double-hybrid approximations based on the PBEsol density functional gives lattice energies per molecule with an accuracy of about 6 kJ/mol, which is similar to the accuracy of LMP2. This conclusion is further verified on molecular dimers and on the hydrogen cyanide crystal.

Keywords

Cite

@article{arxiv.1407.1011,
  title  = {Double-hybrid density-functional theory applied to molecular crystals},
  author = {Kamal Sharkas and Julien Toulouse and Lorenzo Maschio and Bartolomeo Civalleri},
  journal= {arXiv preprint arXiv:1407.1011},
  year   = {2015}
}

Comments

Journal of Chemical Physics (2014)

R2 v1 2026-06-22T04:54:42.708Z