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Competition between N and O: use of diazine N-oxides as a test case for the Marcus theory rationale for ambident reactivity

The preferred site of alkylation of diazine N-oxides by representative hard and soft alkylating agents was established conclusively using the (1)H–(15)N HMBC NMR technique in combination with other NMR spectroscopic methods. Alkylation of pyrazine N-oxides (1 and 2) occurs preferentially on nitrogen...

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Autores principales: Sheehy, Kevin J., Bateman, Lorraine M., Flosbach, Niko T., Breugst, Martin, Byrne, Peter A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8162281/
https://www.ncbi.nlm.nih.gov/pubmed/34094230
http://dx.doi.org/10.1039/d0sc02834g
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author Sheehy, Kevin J.
Bateman, Lorraine M.
Flosbach, Niko T.
Breugst, Martin
Byrne, Peter A.
author_facet Sheehy, Kevin J.
Bateman, Lorraine M.
Flosbach, Niko T.
Breugst, Martin
Byrne, Peter A.
author_sort Sheehy, Kevin J.
collection PubMed
description The preferred site of alkylation of diazine N-oxides by representative hard and soft alkylating agents was established conclusively using the (1)H–(15)N HMBC NMR technique in combination with other NMR spectroscopic methods. Alkylation of pyrazine N-oxides (1 and 2) occurs preferentially on nitrogen regardless of the alkylating agent employed, while O-methylation of pyrimidine N-oxide (3) is favoured in its reaction with MeOTf. As these outcomes cannot be explained in the context of the hard/soft acid/base (HSAB) principle, we have instead turned to Marcus theory to rationalise these results. Marcus intrinsic barriers (ΔG(‡)(0)) and Δ(r)G° values were calculated at the DLPNO-CCSD(T)/def2-TZVPPD/SMD//M06-2X-D3/6-311+G(d,p)/SMD level of theory for methylation reactions of 1 and 3 by MeI and MeOTf, and used to derive Gibbs energies of activation (ΔG(‡)) for the processes of N- and O-methylation, respectively. These values, as well as those derived directly from the DFT calculations, closely reproduce the observed experimental N- vs. O-alkylation selectivities for methylation reactions of 1 and 3, indicating that Marcus theory can be used in a semi-quantitative manner to understand how the activation barriers for these reactions are constructed. It was found that N-alkylation of 1 is favoured due to the dominant contribution of Δ(r)G° to the activation barrier in this case, while O-alkylation of 3 is favoured due to the dominant contribution of the intrinsic barrier (ΔG(‡)(0)) for this process. These results are of profound significance in understanding the outcomes of reactions of ambident reactants in general.
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spelling pubmed-81622812021-06-04 Competition between N and O: use of diazine N-oxides as a test case for the Marcus theory rationale for ambident reactivity Sheehy, Kevin J. Bateman, Lorraine M. Flosbach, Niko T. Breugst, Martin Byrne, Peter A. Chem Sci Chemistry The preferred site of alkylation of diazine N-oxides by representative hard and soft alkylating agents was established conclusively using the (1)H–(15)N HMBC NMR technique in combination with other NMR spectroscopic methods. Alkylation of pyrazine N-oxides (1 and 2) occurs preferentially on nitrogen regardless of the alkylating agent employed, while O-methylation of pyrimidine N-oxide (3) is favoured in its reaction with MeOTf. As these outcomes cannot be explained in the context of the hard/soft acid/base (HSAB) principle, we have instead turned to Marcus theory to rationalise these results. Marcus intrinsic barriers (ΔG(‡)(0)) and Δ(r)G° values were calculated at the DLPNO-CCSD(T)/def2-TZVPPD/SMD//M06-2X-D3/6-311+G(d,p)/SMD level of theory for methylation reactions of 1 and 3 by MeI and MeOTf, and used to derive Gibbs energies of activation (ΔG(‡)) for the processes of N- and O-methylation, respectively. These values, as well as those derived directly from the DFT calculations, closely reproduce the observed experimental N- vs. O-alkylation selectivities for methylation reactions of 1 and 3, indicating that Marcus theory can be used in a semi-quantitative manner to understand how the activation barriers for these reactions are constructed. It was found that N-alkylation of 1 is favoured due to the dominant contribution of Δ(r)G° to the activation barrier in this case, while O-alkylation of 3 is favoured due to the dominant contribution of the intrinsic barrier (ΔG(‡)(0)) for this process. These results are of profound significance in understanding the outcomes of reactions of ambident reactants in general. The Royal Society of Chemistry 2020-07-23 /pmc/articles/PMC8162281/ /pubmed/34094230 http://dx.doi.org/10.1039/d0sc02834g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Sheehy, Kevin J.
Bateman, Lorraine M.
Flosbach, Niko T.
Breugst, Martin
Byrne, Peter A.
Competition between N and O: use of diazine N-oxides as a test case for the Marcus theory rationale for ambident reactivity
title Competition between N and O: use of diazine N-oxides as a test case for the Marcus theory rationale for ambident reactivity
title_full Competition between N and O: use of diazine N-oxides as a test case for the Marcus theory rationale for ambident reactivity
title_fullStr Competition between N and O: use of diazine N-oxides as a test case for the Marcus theory rationale for ambident reactivity
title_full_unstemmed Competition between N and O: use of diazine N-oxides as a test case for the Marcus theory rationale for ambident reactivity
title_short Competition between N and O: use of diazine N-oxides as a test case for the Marcus theory rationale for ambident reactivity
title_sort competition between n and o: use of diazine n-oxides as a test case for the marcus theory rationale for ambident reactivity
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8162281/
https://www.ncbi.nlm.nih.gov/pubmed/34094230
http://dx.doi.org/10.1039/d0sc02834g
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