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Visible-Light-Driven B-to-C Atom Swap: Scalable Skeletal Editing Access to Benzimidazoles from Diazaborines
Yonghong Yin1, Jianjing Yang1, Kelu Yan1
1Key Laboratory of Green Natural Products and Pharmaceutical Intermediates in Colleges and Universities of Shandong Province, School of Chemistry and Chemical Engineering, Qufu Normal University, Qufu 273165, Shandong, China.
Abstract:
We report a practical and scalable boron-to-carbon atom swapping methodology that facilitates the efficient synthesis of benzimidazole-based drugs. This exogenous photocatalyst-free, visible-light-driven transformation is selective and controllable, proceeding under mild conditions. It provides a unique strategy to address a series of challenges associated with de novo synthesis and photocatalytic skeleton editing for constructing medicinal benzimidazole derivatives, including high-energy barrier obstacles, metal residue, limited UV light, scalability, and poor functional group tolerance. Specifically, it enables a 100 mmol scale synthesis with broad functional group tolerance, avoiding metal contamination that plagues catalytic systems. Our density functional theory (DFT) calculations support our proposed B-to-C atom swap mechanism and indicate that the solvent alcohol plays an auxiliary role in promoting the reaction initiation by inserting the C-O bond of the aldehyde into the N-B bond.
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