4.7 Article

H4: A challenging system for natural orbital functional approximations

Journal

JOURNAL OF CHEMICAL PHYSICS
Volume 143, Issue 16, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/1.4934799

Keywords

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Funding

  1. MINECO [CTQ2012-38496-C05-01, CTQ2012-38496-C05-04, CTQ2014-52525-P]
  2. Basque Country Consolidated Group [IT588-13]

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The correct description of nondynamic correlation by electronic structure methods not belonging to the multireference family is a challenging issue. The transition of D-2h to D-4h symmetry in H-4 molecule is among the most simple archetypal examples to illustrate the consequences of missing nondynamic correlation effects. The resurgence of interest in density matrix functional methods has brought several new methods including the family of Piris Natural Orbital Functionals (PNOF). In this work, we compare PNOF5 and PNOF6, which include nondynamic electron correlation effects to some extent, with other standard ab initio methods in the H-4 D-4h/D-2h potential energy surface (PES). Thus far, the wrongful behavior of single-reference methods at the D-2h-D-4h transition of H-4 has been attributed to wrong account of nondynamic correlation effects, whereas in geminal-based approaches, it has been assigned to a wrong coupling of spins and the localized nature of the orbitals. We will show that actually interpair nondynamic correlation is the key to a cusp-free qualitatively correct description of H-4 PES. By introducing interpair nondynamic correlation, PNOF6 is shown to avoid cusps and provide the correct smooth PES features at distances close to the equilibrium, total and local spin properties along with the correct electron delocalization, as reflected by natural orbitals and multi-center delocalization indices. (C) 2015 AIP Publishing LLC.

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