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Chemoselective Aliphatic C–H Bond Oxidation Enabled by Polarity Reversal

[Image: see text] Methods for selective oxidation of aliphatic C–H bonds are called on to revolutionize organic synthesis by providing novel and more efficient paths. Realization of this goal requires the discovery of mechanisms that can alter in a predictable manner the innate reactivity of these b...

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Autores principales: Dantignana, Valeria, Milan, Michela, Cussó, Olaf, Company, Anna, Bietti, Massimo, Costas, Miquel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2017
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5746866/
https://www.ncbi.nlm.nih.gov/pubmed/29296677
http://dx.doi.org/10.1021/acscentsci.7b00532
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author Dantignana, Valeria
Milan, Michela
Cussó, Olaf
Company, Anna
Bietti, Massimo
Costas, Miquel
author_facet Dantignana, Valeria
Milan, Michela
Cussó, Olaf
Company, Anna
Bietti, Massimo
Costas, Miquel
author_sort Dantignana, Valeria
collection PubMed
description [Image: see text] Methods for selective oxidation of aliphatic C–H bonds are called on to revolutionize organic synthesis by providing novel and more efficient paths. Realization of this goal requires the discovery of mechanisms that can alter in a predictable manner the innate reactivity of these bonds. Ideally, these mechanisms need to make oxidation of aliphatic C–H bonds, which are recognized as relatively inert, compatible with the presence of electron rich functional groups that are highly susceptible to oxidation. Furthermore, predictable modification of the relative reactivity of different C–H bonds within a molecule would enable rapid diversification of the resulting oxidation products. Herein we show that by engaging in hydrogen bonding, fluorinated alcohols exert a polarity reversal on electron rich functional groups, directing iron and manganese catalyzed oxidation toward a priori stronger and unactivated C–H bonds. As a result, selective hydroxylation of methylenic sites in hydrocarbons and remote aliphatic C–H oxidation of otherwise sensitive alcohol, ether, amide, and amine substrates is achieved employing aqueous hydrogen peroxide as oxidant. Oxidations occur in a predictable manner, with outstanding levels of product chemoselectivity, preserving the first-formed hydroxylation product, thus representing an extremely valuable tool for synthetic planning and development.
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spelling pubmed-57468662018-01-02 Chemoselective Aliphatic C–H Bond Oxidation Enabled by Polarity Reversal Dantignana, Valeria Milan, Michela Cussó, Olaf Company, Anna Bietti, Massimo Costas, Miquel ACS Cent Sci [Image: see text] Methods for selective oxidation of aliphatic C–H bonds are called on to revolutionize organic synthesis by providing novel and more efficient paths. Realization of this goal requires the discovery of mechanisms that can alter in a predictable manner the innate reactivity of these bonds. Ideally, these mechanisms need to make oxidation of aliphatic C–H bonds, which are recognized as relatively inert, compatible with the presence of electron rich functional groups that are highly susceptible to oxidation. Furthermore, predictable modification of the relative reactivity of different C–H bonds within a molecule would enable rapid diversification of the resulting oxidation products. Herein we show that by engaging in hydrogen bonding, fluorinated alcohols exert a polarity reversal on electron rich functional groups, directing iron and manganese catalyzed oxidation toward a priori stronger and unactivated C–H bonds. As a result, selective hydroxylation of methylenic sites in hydrocarbons and remote aliphatic C–H oxidation of otherwise sensitive alcohol, ether, amide, and amine substrates is achieved employing aqueous hydrogen peroxide as oxidant. Oxidations occur in a predictable manner, with outstanding levels of product chemoselectivity, preserving the first-formed hydroxylation product, thus representing an extremely valuable tool for synthetic planning and development. American Chemical Society 2017-12-13 2017-12-27 /pmc/articles/PMC5746866/ /pubmed/29296677 http://dx.doi.org/10.1021/acscentsci.7b00532 Text en Copyright © 2017 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Dantignana, Valeria
Milan, Michela
Cussó, Olaf
Company, Anna
Bietti, Massimo
Costas, Miquel
Chemoselective Aliphatic C–H Bond Oxidation Enabled by Polarity Reversal
title Chemoselective Aliphatic C–H Bond Oxidation Enabled by Polarity Reversal
title_full Chemoselective Aliphatic C–H Bond Oxidation Enabled by Polarity Reversal
title_fullStr Chemoselective Aliphatic C–H Bond Oxidation Enabled by Polarity Reversal
title_full_unstemmed Chemoselective Aliphatic C–H Bond Oxidation Enabled by Polarity Reversal
title_short Chemoselective Aliphatic C–H Bond Oxidation Enabled by Polarity Reversal
title_sort chemoselective aliphatic c–h bond oxidation enabled by polarity reversal
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5746866/
https://www.ncbi.nlm.nih.gov/pubmed/29296677
http://dx.doi.org/10.1021/acscentsci.7b00532
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