Borane‐Catalyzed Water Dehydrogenation at Dioxaphospholes and ‐Phospholanes

ABSTRACT We report that water undergoes rapid oxidative addition to readily accessible dioxaphospholes and ‐phospholanes within minutes at room temperature. The resulting phenylphosphinate esters release dihydrogen under mild conditions (room temperature to 60°C) in a borane‐catalyzed process. Remarkably, a pinacol‐derived dioxaphospholane reacts spontaneously with atmospheric moisture under ambient conditions to form the corresponding phenylphosphinate ester, thereby enabling the direct utilization of water from air for catalytic hydrogen evolution. The mechanism of the borane‐catalyzed dehydrogenation was investigated by variable time normalization analysis, targeted synthesis of intermediates, and DFT calculations. These studies support a catalytic pathway initiated by hydrogen elimination from the borane adduct of the phosphinate ester, followed by retro‐hydroboration to regenerate the catalyst.

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Publication Details

Journal
Angewandte Chemie International Edition
Published
2026-09-26
DOI
https://doi.org/10.1002/anie.3462462
Primary Topic
Asymmetric Hydrogenation and Catalysis
Type
article
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Borane‐Catalyzed Water Dehydrogenation at Dioxaphospholes and ‐Phospholanes

Johanna Osterbrink, Urs Gellrich, Niklas Koch, Felix Wech et al.
Angewandte Chemie International Edition
Asymmetric Hydrogenation and Catalysis
article

Borane‐Catalyzed Water Dehydrogenation at Dioxaphospholes and ‐Phospholanes

Johanna Osterbrink, Urs Gellrich, Niklas Koch, Felix Wech, Tonin Léautier
article en

Abstract

ABSTRACT We report that water undergoes rapid oxidative addition to readily accessible dioxaphospholes and ‐phospholanes within minutes at room temperature. The resulting phenylphosphinate esters release dihydrogen under mild conditions (room temperature to 60°C) in a borane‐catalyzed process. Remarkably, a pinacol‐derived dioxaphospholane reacts spontaneously with atmospheric moisture under ambient conditions to form the corresponding phenylphosphinate ester, thereby enabling the direct utilization of water from air for catalytic hydrogen evolution. The mechanism of the borane‐catalyzed dehydrogenation was investigated by variable time normalization analysis, targeted synthesis of intermediates, and DFT calculations. These studies support a catalytic pathway initiated by hydrogen elimination from the borane adduct of the phosphinate ester, followed by retro‐hydroboration to regenerate the catalyst.

Angewandte Chemie International Edition
University of Stuttgart (DE), University of Hohenheim (DE), Okinawa Institute of Science and Technology Graduate University (JP)
Clean water and sanitation
Openalex Percentile: Top 26%
Asymmetric Hydrogenation and Catalysis
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