Radical Markovnikov Hydroboration of Unactivated Terminal Alkenes With HBaza‐Type Hydroborane via a Triple Catalysis

Organoboron compounds are versatile building blocks for C─C and C-heteroatom bond formation, with broad applications in drug discovery and materials science. Hydroboration of alkenes with hydroboranes is a reliable route to access organoboron compoundsssssss, yet the Markovnikov-selective hydroboration of unactivated terminal alkenes remains challenging. In this study, we report a triple catalysis strategy for the highly Markovnikov-selective hydroboration of unactivated terminal alkenes with HBaza-type hydroborane (HBaza: 1,3,2-benzodiazaborolane). The reaction exhibits a broad substrate scope and good functional group compatibility, and has been successfully applied to the Markovnikov hydroboration of alkene derivatives from complex molecules. Further derivatizations of the resulting alkyl boron products, as well as the synthesis of biologically relevant molecules or intermediates, highlight the synthetic value of this method. Mechanistic studies support that this reaction proceeds via sequential metal-hydride hydrogen atom transfer (MHAT)-mediated radical generation and HBaza-involved radical borylation process under a triple photoredox, cobalt, and Brønsted acid catalysis.

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Journal
Angewandte Chemie International Edition
Published
2026-10-04
DOI
https://doi.org/10.1002/anie.5679433
Primary Topic
Organoboron and organosilicon chemistry
Type
article
Field-Weighted Citation Impact
0.00

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article

Radical Markovnikov Hydroboration of Unactivated Terminal Alkenes With HBaza‐Type Hydroborane via a Triple Catalysis

Peng Liu, Kai Huai Yang, Qiuling Song, Yu Zhang et al.
Angewandte Chemie International Edition
Organoboron and organosilicon chemistry
article

Radical Markovnikov Hydroboration of Unactivated Terminal Alkenes With HBaza‐Type Hydroborane via a Triple Catalysis

Peng Liu, Kai Huai Yang, Qiuling Song, Yu Zhang, Jie Xu, Yiyun Pan, Chang Liu
article en

Abstract

Organoboron compounds are versatile building blocks for C─C and C-heteroatom bond formation, with broad applications in drug discovery and materials science. Hydroboration of alkenes with hydroboranes is a reliable route to access organoboron compoundsssssss, yet the Markovnikov-selective hydroboration of unactivated terminal alkenes remains challenging. In this study, we report a triple catalysis strategy for the highly Markovnikov-selective hydroboration of unactivated terminal alkenes with HBaza-type hydroborane (HBaza: 1,3,2-benzodiazaborolane). The reaction exhibits a broad substrate scope and good functional group compatibility, and has been successfully applied to the Markovnikov hydroboration of alkene derivatives from complex molecules. Further derivatizations of the resulting alkyl boron products, as well as the synthesis of biologically relevant molecules or intermediates, highlight the synthetic value of this method. Mechanistic studies support that this reaction proceeds via sequential metal-hydride hydrogen atom transfer (MHAT)-mediated radical generation and HBaza-involved radical borylation process under a triple photoredox, cobalt, and Brønsted acid catalysis.

Angewandte Chemie International Edition
University of Pittsburgh (US), Henan Normal University (CN), Fuzhou University (CN), Fujian University of Technology (CN), Nanjing University (CN)
Henan Normal University, National Natural Science Foundation of China, Nanjing University, State Key Laboratory of Coordination Chemistry, Center for Research Computing, University of Pittsburgh
Openalex Percentile: Top 24%
Organoboron and organosilicon chemistry
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