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Description of Polar Chemical Bonds from the Quantum Mechanical Interference Perspective

Fantuzzi, Felipe, Nascimento, Marco A. C. (2014) Description of Polar Chemical Bonds from the Quantum Mechanical Interference Perspective. Journal of Chemical Theory and Computation, 10 (63). pp. 2322-2332. ISSN 1549-9618. (doi:10.1021/ct500334f) (The full text of this publication is not currently available from this repository. You may be able to access a copy if URLs are provided) (KAR id:98576)

The full text of this publication is not currently available from this repository. You may be able to access a copy if URLs are provided. (Contact us about this Publication)
Official URL:
https://doi.org/10.1021/ct500334f

Abstract

The Generalized Product Function Energy Partitioning (GPF-EP) method has been applied to a set of molecules, AH (A = Li, Be, B, C, N, O, F), CO and LiF with quite different dipole moments, in order to investigate the role played by the quantum interference effect in the formation of polar chemical bonds. The calculations were carried out with GPF wave functions treating all the core electrons as a single Hartree–Fock group and the bonding electrons at the Generalized Valence Bond Perfect-Pairing (GVB-PP) level, with the cc-pVTZ basis set. The results of the energy partitioning into interference and quasi-classical contributions along the respective Potential Energy Surfaces (PES) show that the main contribution to the depth of the potential wells comes from the interference term, which is an indication that all the molecules mentioned above form typical covalent bonds. In all cases, the stabilization promoted by the interference term comes from the kinetic contribution, in agreement with previous results. The analysis of the effect of quantum interference on the electron density reveals that while polarization effects (quasi-classical) tend to displace electronic density from the most polarizable atom toward the less polarizable one, interference (quantum effects) counteracts by displacing electronic density to the bond region, giving rise to the right electronic density and dipole moment.

Item Type: Article
DOI/Identification number: 10.1021/ct500334f
Subjects: Q Science > QD Chemistry
Divisions: Divisions > Division of Natural Sciences > Chemistry and Forensics
Funders: Coordenação de Aperfeicoamento de Pessoal de Nível Superior (https://ror.org/00x0ma614)
National Council for Scientific and Technological Development (https://ror.org/03swz6y49)
Depositing User: Felipe Fantuzzi
Date Deposited: 01 Dec 2022 00:06 UTC
Last Modified: 02 Dec 2022 08:58 UTC
Resource URI: https://kar.kent.ac.uk/id/eprint/98576 (The current URI for this page, for reference purposes)

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