A challenging redox neutral Cp*Co(III)-catalysed alkylation of acetanilides with 3-buten-2-one: synthesis and key insights into the mechanism through DFT calculations

Traditional, established palladium cross-coupling procedures are widely applied in complex molecule synthesis; however, there is a significant disadvantage in the requirement for pre-functionalised substrates (commonly halides/triflates). Direct C–H activation protocols provide the opportunity for a...

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Main Authors: Andrew Kenny, Alba Pisarello, Arron Bird, Paula G. Chirila, Alex Hamilton, Christopher J. Whiteoak
Format: Article
Language:English
Published: Beilstein-Institut 2018-09-01
Series:Beilstein Journal of Organic Chemistry
Subjects:
Online Access:https://doi.org/10.3762/bjoc.14.212
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spelling doaj-002e7f83b1514565807048a13712cd8e2021-02-02T04:39:11ZengBeilstein-InstitutBeilstein Journal of Organic Chemistry1860-53972018-09-011412366237410.3762/bjoc.14.2121860-5397-14-212A challenging redox neutral Cp*Co(III)-catalysed alkylation of acetanilides with 3-buten-2-one: synthesis and key insights into the mechanism through DFT calculationsAndrew Kenny0Alba Pisarello1Arron Bird2Paula G. Chirila3Alex Hamilton4Christopher J. Whiteoak5Department of Biosciences and Chemistry, Sheffield Hallam University, Sheffield, S1 1WB, United KingdomDepartment of Biosciences and Chemistry, Sheffield Hallam University, Sheffield, S1 1WB, United KingdomDepartment of Biosciences and Chemistry, Sheffield Hallam University, Sheffield, S1 1WB, United KingdomDepartment of Biosciences and Chemistry, Sheffield Hallam University, Sheffield, S1 1WB, United KingdomDepartment of Biosciences and Chemistry, Sheffield Hallam University, Sheffield, S1 1WB, United KingdomDepartment of Biosciences and Chemistry, Sheffield Hallam University, Sheffield, S1 1WB, United KingdomTraditional, established palladium cross-coupling procedures are widely applied in complex molecule synthesis; however, there is a significant disadvantage in the requirement for pre-functionalised substrates (commonly halides/triflates). Direct C–H activation protocols provide the opportunity for a novel approach to synthesis, although this field is still in its relative infancy and often transferability between substrate classes remains unresolved and limitations not fully understood. This study focuses on the translation of an established Cp*Co(III)-catalysed alkylation of benzamides to related acetanilides using 3-buten-2-one as coupling partner. The developed procedure provides a wide substrate scope in terms of substituted acetanilides, although the optimised conditions were found to be more forcing than those for the corresponding benzamide substrates. Interestingly, density functional theory (DFT) studies reveal that the major impediment in the mechanism is not the C–H activation step, but instead and unexpectedly, effective competition with more stable compounds (resting states) not involved in the catalytic cycle.https://doi.org/10.3762/bjoc.14.212acetanilidesalkylationC–H activationcobalt catalysisDFT studies
collection DOAJ
language English
format Article
sources DOAJ
author Andrew Kenny
Alba Pisarello
Arron Bird
Paula G. Chirila
Alex Hamilton
Christopher J. Whiteoak
spellingShingle Andrew Kenny
Alba Pisarello
Arron Bird
Paula G. Chirila
Alex Hamilton
Christopher J. Whiteoak
A challenging redox neutral Cp*Co(III)-catalysed alkylation of acetanilides with 3-buten-2-one: synthesis and key insights into the mechanism through DFT calculations
Beilstein Journal of Organic Chemistry
acetanilides
alkylation
C–H activation
cobalt catalysis
DFT studies
author_facet Andrew Kenny
Alba Pisarello
Arron Bird
Paula G. Chirila
Alex Hamilton
Christopher J. Whiteoak
author_sort Andrew Kenny
title A challenging redox neutral Cp*Co(III)-catalysed alkylation of acetanilides with 3-buten-2-one: synthesis and key insights into the mechanism through DFT calculations
title_short A challenging redox neutral Cp*Co(III)-catalysed alkylation of acetanilides with 3-buten-2-one: synthesis and key insights into the mechanism through DFT calculations
title_full A challenging redox neutral Cp*Co(III)-catalysed alkylation of acetanilides with 3-buten-2-one: synthesis and key insights into the mechanism through DFT calculations
title_fullStr A challenging redox neutral Cp*Co(III)-catalysed alkylation of acetanilides with 3-buten-2-one: synthesis and key insights into the mechanism through DFT calculations
title_full_unstemmed A challenging redox neutral Cp*Co(III)-catalysed alkylation of acetanilides with 3-buten-2-one: synthesis and key insights into the mechanism through DFT calculations
title_sort challenging redox neutral cp*co(iii)-catalysed alkylation of acetanilides with 3-buten-2-one: synthesis and key insights into the mechanism through dft calculations
publisher Beilstein-Institut
series Beilstein Journal of Organic Chemistry
issn 1860-5397
publishDate 2018-09-01
description Traditional, established palladium cross-coupling procedures are widely applied in complex molecule synthesis; however, there is a significant disadvantage in the requirement for pre-functionalised substrates (commonly halides/triflates). Direct C–H activation protocols provide the opportunity for a novel approach to synthesis, although this field is still in its relative infancy and often transferability between substrate classes remains unresolved and limitations not fully understood. This study focuses on the translation of an established Cp*Co(III)-catalysed alkylation of benzamides to related acetanilides using 3-buten-2-one as coupling partner. The developed procedure provides a wide substrate scope in terms of substituted acetanilides, although the optimised conditions were found to be more forcing than those for the corresponding benzamide substrates. Interestingly, density functional theory (DFT) studies reveal that the major impediment in the mechanism is not the C–H activation step, but instead and unexpectedly, effective competition with more stable compounds (resting states) not involved in the catalytic cycle.
topic acetanilides
alkylation
C–H activation
cobalt catalysis
DFT studies
url https://doi.org/10.3762/bjoc.14.212
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