Congested C(sp3)-rich architectures enabled by iron-catalysed conjunctive alkylation

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Congested C(sp3)-rich architectures enabled by iron-catalysed conjunctive alkylation
Title:
Congested C(sp3)-rich architectures enabled by iron-catalysed conjunctive alkylation
Journal Title:
Nature Catalysis
Publication Date:
23 February 2024
Citation:
Tan, T.-D., Serviano, J. M. I., Luo, X., Qian, P.-C., Holland, P. L., Zhang, X., Koh, M. J. (2024). Congested C(sp3)-rich architectures enabled by iron-catalysed conjunctive alkylation. Nature Catalysis, 7(3), 321–329. https://doi.org/10.1038/s41929-024-01113-8
Abstract:
Catalytic cross-coupling by transition metals has revolutionized the formation of carbon–carbon bonds in organic synthesis. However, the challenge of forming multiple alkyl–alkyl bonds in crowded environments remains largely unresolved. Here we report the regioselective functionalization of olefins with sp3-hybridized organohalides and organozinc reagents using a simple (terpyridine)iron catalyst. Aliphatic groups of various sizes are successfully installed on either olefinic carbon, furnishing a diverse array of products with congested cores featuring carbon- or heteroatom-substituted stereocentres. The method enables access to valuable but synthetically challenging C(sp3)-rich molecules, including alicyclic compounds bearing multiple contiguous stereocentres, through annulation cascades. Mechanistic and theoretical studies suggest a stepwise iron-mediated radical carbometallation pathway followed by outer-sphere carbon–carbon bond formation, which potentially opens the door to a broader scope of transformations and new chemical space.
License type:
Publisher Copyright
Funding Info:
This research / project is supported by the A*STAR - Career Development Fund
Grant Reference no. : C210812008

This research / project is supported by the A*STAR - YIRG
Grant Reference no. : M22K3c0091
Description:
This is a post-peer-review, pre-copyedit version of an article published in Nature Catalysis. The final authenticated version is available online at: http://dx.doi.org/10.1038/s41929-024-01113-8
ISSN:
2520-1158
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