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The direct coupling of alkene feedstocks with aldehydes represents an expedient approach to the generation of new and structurally diverse C(sp)-hybridized alcohols that are primed for elaboration into privileged architectures. Despite their abundance, current disconnection strategies enabling the direct coupling of carbon-carbon π-bonds and aldehydes remain challenging because contemporary methods are often limited by substrate or functional group tolerance and compatibility in complex molecular environments. Here, we report a coupling between simple alkenes, heteroarenes and unactivated aliphatic aldehydes via an electrochemically induced reductive activation of C-C π-bonds. The cornerstone of this approach is the discovery of rapid alternating polarity (rAP) electrolysis to access and direct highly reactive radical anion intermediates derived from conjugated alkenes and heterocyclic compounds. Our developed catalyst-free protocol enables direct access to new and structurally diverse C(sp)-hybridized alcohol products. This is achieved by the controlled reduction of conjugated alkenes and the C2-C3 π-bond in heteroarenes via an unprecedented reductive dearomative functionalization for heterocyclic compounds. Experimental mechanistic studies demonstrate a kinetically biased single-electron reduction of C-C π-bonds over aldehydes. Application of rAP enables chemoselective generation of olefinic radical anion intermediates and avoids undesired saturative overreduction. Overall, this technology provides a versatile approach to the reductive coupling of olefin and heterocycle feedstocks with aliphatic aldehydes, offering straightforward access to diverse C(sp)-rich oxygenated scaffolds.
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http://dx.doi.org/10.1021/jacs.4c08691 | DOI Listing |
Chem Asian J
July 2025
Department of Chemical Sciences, Tezpur University, Napaam, Dist-Sonitpur, Tezpur, Assam, 784028, India.
The reductive dearomatization reaction of N-alkylindoles represents an expedient approach to the generation of N-alkylindolines that are primed for elaboration into more complex target molecules but difficult to access in synthetically acceptable yields directly from (NH)-indolines via their N-alkylation. However, its application to obtain N-alkylindolines bearing reducible functional groups remains a more challenging and long-standing problem due to functional group compatibility issues. In this context, we have achieved a dearomative, chemoselective reduction of epoxide-tethered indoles promoted by NaBHCN/AcOH to obtain hitherto unreported trans-benzylic epoxide-tethered indolines.
View Article and Find Full Text PDFSci Adv
May 2025
Key Laboratory for Advanced Materials and Joint International Research Laboratory of Precision Chemistry and Molecular Engineering, Feringa Nobel Prize Scientist Joint Research Center, Frontiers Science Center for Materiobiology and Dynamic Chemistry, School of Chemistry and Molecular Engineering, E
Indoles represent one of the most robust and synthetically versatile classes of heteroaromatic compounds. However, the stereoselective conversion of planar indole rings into three-dimensional indoline skeletons bearing multiple stereogenic centers remains a persistent challenge in organic synthesis. Herein, we describe an intermolecular catalytic asymmetric dearomatization of simple indoles via a palladium-catalyzed three-component cross-coupling reaction.
View Article and Find Full Text PDFJ Org Chem
January 2025
Department of Chemistry, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina 27599-3290, United States.
An acid-promoted dearomative rearrangement of -arylhydroxylamines affords 2-aminocyclohexadien-1-ones, which can in turn be reductively quenched for the synthesis of -aminoalcohols on a cyclohexadiene core. This method serves as an efficient entry to the pharmaceutically relevant 1-arylcyclohexylamine scaffold in two steps (one purification) from commercially available or readily prepared 2-arylphenols.
View Article and Find Full Text PDFJ Am Chem Soc
October 2024
School of Chemistry, The University of Melbourne, Parkville, Victoria 3010, Australia.
Org Lett
October 2024
Guangxi Key Laboratory of Drug Discovery and Optimization, Guangxi Engineering Research Center for Pharmaceutical Molecular Screening and Druggability Evaluation, Key Laboratory of Medical and Translational Medicine, School of Pharmacy, Guilin Medical University, Guilin 541199, People's Republic of
An electrochemical cyclization/spirocyclization hydroarylation via reductive dearomatization of a series of nonactivated arenes including -substituted indoles, indole-3-carboxamide derivatives, and iodo-substituted benzamides is described. This protocol boasts high atom efficiency, broad substrate applicability, and excellent selectivity. Utilizing a simple undivided cell, various nonactivated arenes undergo cyclization/spirocyclization through the intramolecular addition of aryl radicals to an aromatic ring, yielding 50 indolines, spirocyclizative hydroarylation products, and phenanthridinones.
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