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Mechanism, Reactivity, and Selectivity in Palladium-Catalyzed Redox-Relay Heck Arylations of Alkenyl Alcohols

[Image: see text] The enantioselective Pd-catalyzed redox-relay Heck arylation of acyclic alkenyl alcohols allows access to various useful chiral building blocks from simple olefinic substrates. Mechanistically, after the initial migratory insertion, a succession of β-hydride elimination and migrato...

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Autores principales: Xu, Liping, Hilton, Margaret J., Zhang, Xinhao, Norrby, Per-Ola, Wu, Yun-Dong, Sigman, Matthew S., Wiest, Olaf
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3985895/
https://www.ncbi.nlm.nih.gov/pubmed/24410393
http://dx.doi.org/10.1021/ja4109616
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author Xu, Liping
Hilton, Margaret J.
Zhang, Xinhao
Norrby, Per-Ola
Wu, Yun-Dong
Sigman, Matthew S.
Wiest, Olaf
author_facet Xu, Liping
Hilton, Margaret J.
Zhang, Xinhao
Norrby, Per-Ola
Wu, Yun-Dong
Sigman, Matthew S.
Wiest, Olaf
author_sort Xu, Liping
collection PubMed
description [Image: see text] The enantioselective Pd-catalyzed redox-relay Heck arylation of acyclic alkenyl alcohols allows access to various useful chiral building blocks from simple olefinic substrates. Mechanistically, after the initial migratory insertion, a succession of β-hydride elimination and migratory insertion steps yields a saturated carbonyl product instead of the more general Heck product, an unsaturated alcohol. Here, we investigate the reaction mechanism, including the relay function, yielding the final carbonyl group transformation. M06 calculations predict a ΔΔG(⧧) of 1 kcal/mol for the site selectivity and 2.5 kcal/mol for the enantioselectivity, in quantitative agreement with experimental results. The site selectivity is controlled by a remote electronic effect, where the developing polarization of the alkene in the migratory insertion transition state is stabilized by the C–O dipole of the alcohol moiety. The enantioselectivity is controlled by steric repulsion between the oxazoline substituent and the alcohol-bearing alkene substituent. The relay efficiency is due to an unusually smooth potential energy surface without high barriers, where the hydroxyalkyl-palladium species acts as a thermodynamic sink, driving the reaction toward the carbonyl product. Computational predictions of the relative reactivity and selectivity of the double bond isomers are validated experimentally.
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spelling pubmed-39858952015-01-11 Mechanism, Reactivity, and Selectivity in Palladium-Catalyzed Redox-Relay Heck Arylations of Alkenyl Alcohols Xu, Liping Hilton, Margaret J. Zhang, Xinhao Norrby, Per-Ola Wu, Yun-Dong Sigman, Matthew S. Wiest, Olaf J Am Chem Soc [Image: see text] The enantioselective Pd-catalyzed redox-relay Heck arylation of acyclic alkenyl alcohols allows access to various useful chiral building blocks from simple olefinic substrates. Mechanistically, after the initial migratory insertion, a succession of β-hydride elimination and migratory insertion steps yields a saturated carbonyl product instead of the more general Heck product, an unsaturated alcohol. Here, we investigate the reaction mechanism, including the relay function, yielding the final carbonyl group transformation. M06 calculations predict a ΔΔG(⧧) of 1 kcal/mol for the site selectivity and 2.5 kcal/mol for the enantioselectivity, in quantitative agreement with experimental results. The site selectivity is controlled by a remote electronic effect, where the developing polarization of the alkene in the migratory insertion transition state is stabilized by the C–O dipole of the alcohol moiety. The enantioselectivity is controlled by steric repulsion between the oxazoline substituent and the alcohol-bearing alkene substituent. The relay efficiency is due to an unusually smooth potential energy surface without high barriers, where the hydroxyalkyl-palladium species acts as a thermodynamic sink, driving the reaction toward the carbonyl product. Computational predictions of the relative reactivity and selectivity of the double bond isomers are validated experimentally. American Chemical Society 2014-01-11 2014-02-05 /pmc/articles/PMC3985895/ /pubmed/24410393 http://dx.doi.org/10.1021/ja4109616 Text en Copyright © 2014 American Chemical Society
spellingShingle Xu, Liping
Hilton, Margaret J.
Zhang, Xinhao
Norrby, Per-Ola
Wu, Yun-Dong
Sigman, Matthew S.
Wiest, Olaf
Mechanism, Reactivity, and Selectivity in Palladium-Catalyzed Redox-Relay Heck Arylations of Alkenyl Alcohols
title Mechanism, Reactivity, and Selectivity in Palladium-Catalyzed Redox-Relay Heck Arylations of Alkenyl Alcohols
title_full Mechanism, Reactivity, and Selectivity in Palladium-Catalyzed Redox-Relay Heck Arylations of Alkenyl Alcohols
title_fullStr Mechanism, Reactivity, and Selectivity in Palladium-Catalyzed Redox-Relay Heck Arylations of Alkenyl Alcohols
title_full_unstemmed Mechanism, Reactivity, and Selectivity in Palladium-Catalyzed Redox-Relay Heck Arylations of Alkenyl Alcohols
title_short Mechanism, Reactivity, and Selectivity in Palladium-Catalyzed Redox-Relay Heck Arylations of Alkenyl Alcohols
title_sort mechanism, reactivity, and selectivity in palladium-catalyzed redox-relay heck arylations of alkenyl alcohols
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3985895/
https://www.ncbi.nlm.nih.gov/pubmed/24410393
http://dx.doi.org/10.1021/ja4109616
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