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Computational Study on Homolytic Bond Energies of the Ag–X (X = C, O, and H) Complexes and Hammett-Type Analysis of Reactivity

[Image: see text] Thirty-seven calculation methods were benchmarked against the available experimental bond lengths and energies data regarding the Ag–X bonds. The theoretical protocol PBE0/VDZ//ωB97x-D/mVTZ was found to be capable of accurately predicting the homolytic bond dissociation energies (B...

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Autores principales: Wu, Lei, Tang, Shi-Ya, Zhou, Shaodong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8697619/
https://www.ncbi.nlm.nih.gov/pubmed/34963973
http://dx.doi.org/10.1021/acsomega.1c05563
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author Wu, Lei
Tang, Shi-Ya
Zhou, Shaodong
author_facet Wu, Lei
Tang, Shi-Ya
Zhou, Shaodong
author_sort Wu, Lei
collection PubMed
description [Image: see text] Thirty-seven calculation methods were benchmarked against the available experimental bond lengths and energies data regarding the Ag–X bonds. The theoretical protocol PBE0/VDZ//ωB97x-D/mVTZ was found to be capable of accurately predicting the homolytic bond dissociation energies (BDEs) of Ag–X complexes with a precision of 1.9 kcal/mol. With the available method in hand, a wide range of different Ag–X BDEs were estimated. BDE(Ag–CH(2)X), BDE(Ag–PhX), BDE(Ag–OPhX), and BDE(Ag–OCOPhX) (X = NH(2), OMe, Me, H, Cl, and NO(2)) were found to be in the ranges of 27–47, 51–54, 19–39, and 64–70 kcal/mol, respectively. Subsequently, Hammett-type analysis was carried out with reactivity parameters. Good positive linear relationships were found for BDE of Ag−O bands and decarboxylation barriers of Ag–OCOPhX with the Hammett constant σ. It suggested that electron-donating substituents could promote either the homolytic cleavage of the Ag–OPhX bond to undergo a radical process or Ag–OCOPhX decarboxylation. Moreover, ligand effects on Ag–H bonds were investigated using BDE(Ag–H) and related NPA charges on Ag. In the case of P-ligands, carbene ligands, and other small molecule ligands (i.e., CO, CO(2), and H(2)O), a good negative linear relationship was found. In contrast, N-ligands could have a reverse effect. Understanding the intrinsic relationships of BDE(Ag–X) with related reactivity parameters might help gain insights into the structure–reactivity relationships in Ag–X-assisted C–H activation/decarboxylation.
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spelling pubmed-86976192021-12-27 Computational Study on Homolytic Bond Energies of the Ag–X (X = C, O, and H) Complexes and Hammett-Type Analysis of Reactivity Wu, Lei Tang, Shi-Ya Zhou, Shaodong ACS Omega [Image: see text] Thirty-seven calculation methods were benchmarked against the available experimental bond lengths and energies data regarding the Ag–X bonds. The theoretical protocol PBE0/VDZ//ωB97x-D/mVTZ was found to be capable of accurately predicting the homolytic bond dissociation energies (BDEs) of Ag–X complexes with a precision of 1.9 kcal/mol. With the available method in hand, a wide range of different Ag–X BDEs were estimated. BDE(Ag–CH(2)X), BDE(Ag–PhX), BDE(Ag–OPhX), and BDE(Ag–OCOPhX) (X = NH(2), OMe, Me, H, Cl, and NO(2)) were found to be in the ranges of 27–47, 51–54, 19–39, and 64–70 kcal/mol, respectively. Subsequently, Hammett-type analysis was carried out with reactivity parameters. Good positive linear relationships were found for BDE of Ag−O bands and decarboxylation barriers of Ag–OCOPhX with the Hammett constant σ. It suggested that electron-donating substituents could promote either the homolytic cleavage of the Ag–OPhX bond to undergo a radical process or Ag–OCOPhX decarboxylation. Moreover, ligand effects on Ag–H bonds were investigated using BDE(Ag–H) and related NPA charges on Ag. In the case of P-ligands, carbene ligands, and other small molecule ligands (i.e., CO, CO(2), and H(2)O), a good negative linear relationship was found. In contrast, N-ligands could have a reverse effect. Understanding the intrinsic relationships of BDE(Ag–X) with related reactivity parameters might help gain insights into the structure–reactivity relationships in Ag–X-assisted C–H activation/decarboxylation. American Chemical Society 2021-12-07 /pmc/articles/PMC8697619/ /pubmed/34963973 http://dx.doi.org/10.1021/acsomega.1c05563 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Wu, Lei
Tang, Shi-Ya
Zhou, Shaodong
Computational Study on Homolytic Bond Energies of the Ag–X (X = C, O, and H) Complexes and Hammett-Type Analysis of Reactivity
title Computational Study on Homolytic Bond Energies of the Ag–X (X = C, O, and H) Complexes and Hammett-Type Analysis of Reactivity
title_full Computational Study on Homolytic Bond Energies of the Ag–X (X = C, O, and H) Complexes and Hammett-Type Analysis of Reactivity
title_fullStr Computational Study on Homolytic Bond Energies of the Ag–X (X = C, O, and H) Complexes and Hammett-Type Analysis of Reactivity
title_full_unstemmed Computational Study on Homolytic Bond Energies of the Ag–X (X = C, O, and H) Complexes and Hammett-Type Analysis of Reactivity
title_short Computational Study on Homolytic Bond Energies of the Ag–X (X = C, O, and H) Complexes and Hammett-Type Analysis of Reactivity
title_sort computational study on homolytic bond energies of the ag–x (x = c, o, and h) complexes and hammett-type analysis of reactivity
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8697619/
https://www.ncbi.nlm.nih.gov/pubmed/34963973
http://dx.doi.org/10.1021/acsomega.1c05563
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