Literature DB >> 15267887

The impact of the self-interaction error on the density functional theory description of dissociating radical cations: ionic and covalent dissociation limits.

Jürgen Gräfenstein1, Elfi Kraka, Dieter Cremer.   

Abstract

Self-interaction corrected density functional theory was used to determine the self-interaction error for dissociating one-electron bonds. The self-interaction error of the unpaired electron mimics nondynamic correlation effects that have no physical basis where these effects increase for increasing separation distance. For short distances the magnitude of the self-interaction error takes a minimum and increases then again for decreasing R. The position of the minimum of the magnitude of the self-interaction error influences the equilibrium properties of the one-electron bond in the radical cations H2+ (1), B2H4+ (2), and C2H6+ (3), which differ significantly. These differences are explained by hyperconjugative interactions in 2 and 3 that are directly reflected by the self-interaction error and its orbital contributions. The density functional theory description of the dissociating radical cations suffers not only from the self-interaction error but also from the simplified description of interelectronic exchange. The calculated differences between ionic and covalent dissociation for 1, 2, and 3 provide an excellent criterion for determining the basic failures of density functional theory, self-interaction corrected density functional theory, and other methods. Pure electronic, orbital relaxation, and geometric relaxation contributions to the self-interaction error are discussed. The relevance of these effects for the description of transition states and charge transfer complexes is shown. Suggestions for the construction of new exchange-correlation functionals are given. In this connection, the disadvantages of recently suggested self-interaction error-free density functional theory methods are emphasized. (c) 2004 American Institute of Physics

Entities:  

Year:  2004        PMID: 15267887     DOI: 10.1063/1.1630017

Source DB:  PubMed          Journal:  J Chem Phys        ISSN: 0021-9606            Impact factor:   3.488


  7 in total

1.  Continuous Localized Orbital Corrections to Density Functional Theory: B3LYP-CLOC.

Authors:  Michelle Lynn Hall; Jing Zhang; Arteum D Bochevarov; Richard A Friesner
Journal:  J Chem Theory Comput       Date:  2010-12-14       Impact factor: 6.006

2.  Comparison of the performance of exact-exchange-based density functional methods.

Authors:  Fenglai Liu; Emil Proynov; Jian-Guo Yu; Thomas R Furlani; Jing Kong
Journal:  J Chem Phys       Date:  2012-09-21       Impact factor: 3.488

3.  Localized orbital corrections for the calculation of barrier heights in density functional theory.

Authors:  Michelle Lynn Hall; Dahlia A Goldfeld; Arteum D Bochevarov; Richard A Friesner
Journal:  J Chem Theory Comput       Date:  2009-11-10       Impact factor: 6.006

4.  Structures and Energetics of Neutral and Cationic Pyrene Clusters.

Authors:  Léo Dontot; Fernand Spiegelman; Mathias Rapacioli
Journal:  J Phys Chem A       Date:  2019-10-29       Impact factor: 2.781

5.  Sulfur-Containing Analogues of the Reactive [CuOH]2+ Core.

Authors:  Wen Wu; Jacqui Tehranchi De Hont; Riffat Parveen; Bess Vlaisavljevich; William B Tolman
Journal:  Inorg Chem       Date:  2021-03-18       Impact factor: 5.165

6.  Density-functional tight-binding: basic concepts and applications to molecules and clusters.

Authors:  Fernand Spiegelman; Nathalie Tarrat; Jérôme Cuny; Leo Dontot; Evgeny Posenitskiy; Carles Martí; Aude Simon; Mathias Rapacioli
Journal:  Adv Phys X       Date:  2020-02-18

7.  Generalizing Double-Hybrid Density Functionals: Impact of Higher-Order Perturbation Terms.

Authors:  Subrata Jana; Szymon Śmiga; Lucian A Constantin; Prasanjit Samal
Journal:  J Chem Theory Comput       Date:  2020-11-18       Impact factor: 6.006

  7 in total

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