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Quantification of Noncovalent Interactions in Azide–Pnictogen, –Chalcogen, and –Halogen Contacts

The noncovalent interactions between azides and oxygen‐containing moieties are investigated through a computational study based on experimental findings. The targeted synthesis of organic compounds with close intramolecular azide–oxygen contacts yielded six new representatives, for which X‐ray struc...

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Autores principales: Bursch, Markus, Kunze, Lukas, Vibhute, Amol M., Hansen, Andreas, Sureshan, Kana M., Jones, Peter G., Grimme, Stefan, Werz, Daniel B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7986704/
https://www.ncbi.nlm.nih.gov/pubmed/33078853
http://dx.doi.org/10.1002/chem.202004525
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author Bursch, Markus
Kunze, Lukas
Vibhute, Amol M.
Hansen, Andreas
Sureshan, Kana M.
Jones, Peter G.
Grimme, Stefan
Werz, Daniel B.
author_facet Bursch, Markus
Kunze, Lukas
Vibhute, Amol M.
Hansen, Andreas
Sureshan, Kana M.
Jones, Peter G.
Grimme, Stefan
Werz, Daniel B.
author_sort Bursch, Markus
collection PubMed
description The noncovalent interactions between azides and oxygen‐containing moieties are investigated through a computational study based on experimental findings. The targeted synthesis of organic compounds with close intramolecular azide–oxygen contacts yielded six new representatives, for which X‐ray structures were determined. Two of those compounds were investigated with respect to their potential conformations in the gas phase and a possible significantly shorter azide–oxygen contact. Furthermore, a set of 44 high‐quality, gas‐phase computational model systems with intermolecular azide–pnictogen (N, P, As, Sb), –chalcogen (O, S, Se, Te), and –halogen (F, Cl, Br, I) contacts are compiled and investigated through semiempirical quantum mechanical methods, density functional approximations, and wave function theory. A local energy decomposition (LED) analysis is applied to study the nature of the noncovalent interaction. The special role of electrostatic and London dispersion interactions is discussed in detail. London dispersion is identified as a dominant factor of the azide–donor interaction with mean London dispersion energy‐interaction energy ratios of 1.3. Electrostatic contributions enhance the azide–donor coordination motif. The association energies range from −1.00 to −5.5 kcal mol(−1).
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spelling pubmed-79867042021-03-25 Quantification of Noncovalent Interactions in Azide–Pnictogen, –Chalcogen, and –Halogen Contacts Bursch, Markus Kunze, Lukas Vibhute, Amol M. Hansen, Andreas Sureshan, Kana M. Jones, Peter G. Grimme, Stefan Werz, Daniel B. Chemistry Full Papers The noncovalent interactions between azides and oxygen‐containing moieties are investigated through a computational study based on experimental findings. The targeted synthesis of organic compounds with close intramolecular azide–oxygen contacts yielded six new representatives, for which X‐ray structures were determined. Two of those compounds were investigated with respect to their potential conformations in the gas phase and a possible significantly shorter azide–oxygen contact. Furthermore, a set of 44 high‐quality, gas‐phase computational model systems with intermolecular azide–pnictogen (N, P, As, Sb), –chalcogen (O, S, Se, Te), and –halogen (F, Cl, Br, I) contacts are compiled and investigated through semiempirical quantum mechanical methods, density functional approximations, and wave function theory. A local energy decomposition (LED) analysis is applied to study the nature of the noncovalent interaction. The special role of electrostatic and London dispersion interactions is discussed in detail. London dispersion is identified as a dominant factor of the azide–donor interaction with mean London dispersion energy‐interaction energy ratios of 1.3. Electrostatic contributions enhance the azide–donor coordination motif. The association energies range from −1.00 to −5.5 kcal mol(−1). John Wiley and Sons Inc. 2021-02-08 2021-03-08 /pmc/articles/PMC7986704/ /pubmed/33078853 http://dx.doi.org/10.1002/chem.202004525 Text en © 2020 The Authors. Chemistry - A European Journal published by Wiley-VCH GmbH This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Papers
Bursch, Markus
Kunze, Lukas
Vibhute, Amol M.
Hansen, Andreas
Sureshan, Kana M.
Jones, Peter G.
Grimme, Stefan
Werz, Daniel B.
Quantification of Noncovalent Interactions in Azide–Pnictogen, –Chalcogen, and –Halogen Contacts
title Quantification of Noncovalent Interactions in Azide–Pnictogen, –Chalcogen, and –Halogen Contacts
title_full Quantification of Noncovalent Interactions in Azide–Pnictogen, –Chalcogen, and –Halogen Contacts
title_fullStr Quantification of Noncovalent Interactions in Azide–Pnictogen, –Chalcogen, and –Halogen Contacts
title_full_unstemmed Quantification of Noncovalent Interactions in Azide–Pnictogen, –Chalcogen, and –Halogen Contacts
title_short Quantification of Noncovalent Interactions in Azide–Pnictogen, –Chalcogen, and –Halogen Contacts
title_sort quantification of noncovalent interactions in azide–pnictogen, –chalcogen, and –halogen contacts
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7986704/
https://www.ncbi.nlm.nih.gov/pubmed/33078853
http://dx.doi.org/10.1002/chem.202004525
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