Literature DB >> 29338261

Nature of the Three-Electron Bond.

David Danovich1, Cina Foroutan-Nejad2, Philippe C Hiberty3, Sason Shaik1.   

Abstract

We analyze the properties of 15 3-electron bonds, which include σ-3-electron-bonds, such as dihalide radical anions and di-noble gas radical cations, π-3-electron-bonds as in hydrazine radical cations, and doubly-π-(3e)-bonded species such as O2, FeO+, S2, etc. The primary analytical tool is the breathing-orbital valence-bond (BOVB) method, which enables us to quantify the charge shift resonance energy (RECS) of the three electrons, and the bond dissociation energies (De). BOVB is tested reliable against MRCI calculations. Our findings show that in all 3-electron bonds, none of the VB structures have by themselves any bonding. In fact, in each VB structure, the three electrons maintain Pauli repulsion, while the entire bonding energy arises from resonance due to the charge shift between the two or more constituent VB structures. Hence, 3e-bonds are charge shift bonds (CSBs). The CSB character is probed by calculating the Laplacian (L) of the 3e-bond. Thus, much like the CSBs in electron-pair bonds, such as F2 or the central bond in [1.1.1]propellane, here too L is positive, thus showing the excess kinetic energy of the shared density due to the Pauli repulsion in the 3-electron VB structures. The RECS values for 3-electron bonds are invariably larger than the corresponding bond energies. For the doubly-π-(3e)-bonded species, RECS is very large, exceeding 100 kcal mol-1. As such, it is fitting to conclude that σ- and π-3-electron-bonds find their natural place in the CSB family along with two-electron CSBs, with which they share identical energetic and topological characteristics. Experimental manifestations/tests of 3e-CSBs are proposed.

Entities:  

Year:  2018        PMID: 29338261     DOI: 10.1021/acs.jpca.7b11919

Source DB:  PubMed          Journal:  J Phys Chem A        ISSN: 1089-5639            Impact factor:   2.781


  5 in total

1.  Relativistic four-component MRCISD+Q calculations of the six lowest valence states of molecular F[Formula: see text] anion including Breit interactions.

Authors:  Luiz Guilherme Machado de Macedo; Heracles Pereira Wanzeler; Gabriel Henrique Lange Dias; Ricardo Gargano
Journal:  J Mol Model       Date:  2021-07-26       Impact factor: 1.810

Review 2.  Strategies to Generate Nitrogen-centered Radicals That May Rely on Photoredox Catalysis: Development in Reaction Methodology and Applications in Organic Synthesis.

Authors:  Kitae Kwon; R Thomas Simons; Meganathan Nandakumar; Jennifer L Roizen
Journal:  Chem Rev       Date:  2021-10-08       Impact factor: 60.622

3.  How Do Local Reactivity Descriptors Shape the Potential Energy Surface Associated with Chemical Reactions? The Valence Bond Delocalization Perspective.

Authors:  Thijs Stuyver; Frank De Proft; Paul Geerlings; Sason Shaik
Journal:  J Am Chem Soc       Date:  2020-05-19       Impact factor: 15.419

4.  Low-Temperature Isolation of a Labile Silylated Hydrazinium-yl Radical Cation, [(Me3 Si)2 N-N(H)SiMe3 ].

Authors:  Fabian Reiß; Alexander Villinger; Harald Brand; Wolfgang Baumann; Dirk Hollmann; Axel Schulz
Journal:  Chemistry       Date:  2022-04-29       Impact factor: 5.020

5.  On the Nature of the Bonding in Coinage Metal Halides.

Authors:  Slađana Đorđević; Slavko Radenković; Sason Shaik; Benoît Braïda
Journal:  Molecules       Date:  2022-01-13       Impact factor: 4.411

  5 in total

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