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Benchmark tests and spin adaptation for the particle-particle random phase approximation.

Publication ,  Journal Article
Yang, Y; van Aggelen, H; Steinmann, SN; Peng, D; Yang, W
Published in: The Journal of chemical physics
November 2013

The particle-particle random phase approximation (pp-RPA) provides an approximation to the correlation energy in density functional theory via the adiabatic connection [H. van Aggelen, Y. Yang, and W. Yang, Phys. Rev. A 88, 030501 (2013)]. It has virtually no delocalization error nor static correlation error for single-bond systems. However, with its formal O(N(6)) scaling, the pp-RPA is computationally expensive. In this paper, we implement a spin-separated and spin-adapted pp-RPA algorithm, which reduces the computational cost by a substantial factor. We then perform benchmark tests on the G2/97 enthalpies of formation database, DBH24 reaction barrier database, and four test sets for non-bonded interactions (HB6/04, CT7/04, DI6/04, and WI9/04). For the G2/97 database, the pp-RPA gives a significantly smaller mean absolute error (8.3 kcal/mol) than the direct particle-hole RPA (ph-RPA) (22.7 kcal/mol). Furthermore, the error in the pp-RPA is nearly constant with the number of atoms in a molecule, while the error in the ph-RPA increases. For chemical reactions involving typical organic closed-shell molecules, pp- and ph-RPA both give accurate reaction energies. Similarly, both RPAs perform well for reaction barriers and nonbonded interactions. These results suggest that the pp-RPA gives reliable energies in chemical applications. The adiabatic connection formalism based on pairing matrix fluctuation is therefore expected to lead to widely applicable and accurate density functionals.

Duke Scholars

Published In

The Journal of chemical physics

DOI

EISSN

1089-7690

ISSN

0021-9606

Publication Date

November 2013

Volume

139

Issue

17

Start / End Page

174110

Related Subject Headings

  • Chemical Physics
  • 51 Physical sciences
  • 40 Engineering
  • 34 Chemical sciences
  • 09 Engineering
  • 03 Chemical Sciences
  • 02 Physical Sciences
 

Citation

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Yang, Y., van Aggelen, H., Steinmann, S. N., Peng, D., & Yang, W. (2013). Benchmark tests and spin adaptation for the particle-particle random phase approximation. The Journal of Chemical Physics, 139(17), 174110. https://doi.org/10.1063/1.4828728
Yang, Yang, Helen van Aggelen, Stephan N. Steinmann, Degao Peng, and Weitao Yang. “Benchmark tests and spin adaptation for the particle-particle random phase approximation.The Journal of Chemical Physics 139, no. 17 (November 2013): 174110. https://doi.org/10.1063/1.4828728.
Yang Y, van Aggelen H, Steinmann SN, Peng D, Yang W. Benchmark tests and spin adaptation for the particle-particle random phase approximation. The Journal of chemical physics. 2013 Nov;139(17):174110.
Yang, Yang, et al. “Benchmark tests and spin adaptation for the particle-particle random phase approximation.The Journal of Chemical Physics, vol. 139, no. 17, Nov. 2013, p. 174110. Epmc, doi:10.1063/1.4828728.
Yang Y, van Aggelen H, Steinmann SN, Peng D, Yang W. Benchmark tests and spin adaptation for the particle-particle random phase approximation. The Journal of chemical physics. 2013 Nov;139(17):174110.

Published In

The Journal of chemical physics

DOI

EISSN

1089-7690

ISSN

0021-9606

Publication Date

November 2013

Volume

139

Issue

17

Start / End Page

174110

Related Subject Headings

  • Chemical Physics
  • 51 Physical sciences
  • 40 Engineering
  • 34 Chemical sciences
  • 09 Engineering
  • 03 Chemical Sciences
  • 02 Physical Sciences