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Strong Tetrel Bonds: Theoretical Aspects and Experimental Evidence

In recent years, noncovalent interactions involving group-14 elements of the periodic table acting as a Lewis acid center (or tetrel-bonding interactions) have attracted considerable attention due to their potential applications in supramolecular chemistry, material science and so on. The aim of the...

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Autores principales: Esrafili, Mehdi D., Mousavian, Parisasadat
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6222713/
https://www.ncbi.nlm.nih.gov/pubmed/30326582
http://dx.doi.org/10.3390/molecules23102642
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author Esrafili, Mehdi D.
Mousavian, Parisasadat
author_facet Esrafili, Mehdi D.
Mousavian, Parisasadat
author_sort Esrafili, Mehdi D.
collection PubMed
description In recent years, noncovalent interactions involving group-14 elements of the periodic table acting as a Lewis acid center (or tetrel-bonding interactions) have attracted considerable attention due to their potential applications in supramolecular chemistry, material science and so on. The aim of the present study is to characterize the geometry, strength and bonding properties of strong tetrel-bond interactions in some charge-assisted tetrel-bonded complexes. Ab initio calculations are performed, and the results are supported by the quantum theory of atoms in molecules (QTAIM) and natural bond orbital (NBO) approaches. The interaction energies of the anionic tetrel-bonded complexes formed between XF(3)M molecule (X=F, CN; M=Si, Ge and Sn) and A(−) anions (A(−)=F(−), Cl(−), Br(−), CN(−), NC(−) and N(3)(−)) vary between −16.35 and −96.30 kcal/mol. The M atom in these complexes is generally characterized by pentavalency, i.e., is hypervalent. Moreover, the QTAIM analysis confirms that the anionic tetrel-bonding interaction in these systems could be classified as a strong interaction with some covalent character. On the other hand, it is found that the tetrel-bond interactions in cationic tetrel-bonded [p-NH(3)(C(6)H(4))MH(3)](+)···Z and [p-NH(3)(C(6)F(4))MH(3)](+)···Z complexes (M=Si, Ge, Sn and Z=NH(3), NH(2)CH(3), NH(2)OH and NH(2)NH(2)) are characterized by a strong orbital interaction between the filled lone-pair orbital of the Lewis base and empty BD*(M-C) orbital of the Lewis base. The substitution of the F atoms in the benzene ring provides a strong orbital interaction, and hence improved tetrel-bond interaction. For all charge-assisted tetrel-bonded complexes, it is seen that the formation of tetrel-bond interaction is accompanied bysignificant electron density redistribution over the interacting subunits. Finally, we provide some experimental evidence for the existence of such charge-assisted tetrel-bond interactions in crystalline phase.
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spelling pubmed-62227132018-11-13 Strong Tetrel Bonds: Theoretical Aspects and Experimental Evidence Esrafili, Mehdi D. Mousavian, Parisasadat Molecules Article In recent years, noncovalent interactions involving group-14 elements of the periodic table acting as a Lewis acid center (or tetrel-bonding interactions) have attracted considerable attention due to their potential applications in supramolecular chemistry, material science and so on. The aim of the present study is to characterize the geometry, strength and bonding properties of strong tetrel-bond interactions in some charge-assisted tetrel-bonded complexes. Ab initio calculations are performed, and the results are supported by the quantum theory of atoms in molecules (QTAIM) and natural bond orbital (NBO) approaches. The interaction energies of the anionic tetrel-bonded complexes formed between XF(3)M molecule (X=F, CN; M=Si, Ge and Sn) and A(−) anions (A(−)=F(−), Cl(−), Br(−), CN(−), NC(−) and N(3)(−)) vary between −16.35 and −96.30 kcal/mol. The M atom in these complexes is generally characterized by pentavalency, i.e., is hypervalent. Moreover, the QTAIM analysis confirms that the anionic tetrel-bonding interaction in these systems could be classified as a strong interaction with some covalent character. On the other hand, it is found that the tetrel-bond interactions in cationic tetrel-bonded [p-NH(3)(C(6)H(4))MH(3)](+)···Z and [p-NH(3)(C(6)F(4))MH(3)](+)···Z complexes (M=Si, Ge, Sn and Z=NH(3), NH(2)CH(3), NH(2)OH and NH(2)NH(2)) are characterized by a strong orbital interaction between the filled lone-pair orbital of the Lewis base and empty BD*(M-C) orbital of the Lewis base. The substitution of the F atoms in the benzene ring provides a strong orbital interaction, and hence improved tetrel-bond interaction. For all charge-assisted tetrel-bonded complexes, it is seen that the formation of tetrel-bond interaction is accompanied bysignificant electron density redistribution over the interacting subunits. Finally, we provide some experimental evidence for the existence of such charge-assisted tetrel-bond interactions in crystalline phase. MDPI 2018-10-15 /pmc/articles/PMC6222713/ /pubmed/30326582 http://dx.doi.org/10.3390/molecules23102642 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Esrafili, Mehdi D.
Mousavian, Parisasadat
Strong Tetrel Bonds: Theoretical Aspects and Experimental Evidence
title Strong Tetrel Bonds: Theoretical Aspects and Experimental Evidence
title_full Strong Tetrel Bonds: Theoretical Aspects and Experimental Evidence
title_fullStr Strong Tetrel Bonds: Theoretical Aspects and Experimental Evidence
title_full_unstemmed Strong Tetrel Bonds: Theoretical Aspects and Experimental Evidence
title_short Strong Tetrel Bonds: Theoretical Aspects and Experimental Evidence
title_sort strong tetrel bonds: theoretical aspects and experimental evidence
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6222713/
https://www.ncbi.nlm.nih.gov/pubmed/30326582
http://dx.doi.org/10.3390/molecules23102642
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