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A New Mode of Chemical Reactivity for Metal-Free Hydrogen Activation by Lewis Acidic Boranes.


ABSTRACT: We herein explore whether tris(aryl)borane Lewis acids are capable of cleaving H2 outside of the usual Lewis acid/base chemistry described by the concept of frustrated Lewis pairs (FLPs). Instead of a Lewis base we use a chemical reductant to generate stable radical anions of two highly hindered boranes: tris(3,5-dinitromesityl)borane and tris(mesityl)borane. NMR spectroscopic characterization reveals that the corresponding borane radical anions activate (cleave) dihydrogen, whilst EPR spectroscopic characterization, supported by computational analysis, reveals the intermediates along the hydrogen activation pathway. This radical-based, redox pathway involves the homolytic cleavage of H2 , in contrast to conventional models of FLP chemistry, which invoke a heterolytic cleavage pathway. This represents a new mode of chemical reactivity for hydrogen activation by borane Lewis acids.

SUBMITTER: Bennett EL 

PROVIDER: S-EPMC6594078 | biostudies-literature | 2019 Jun

REPOSITORIES: biostudies-literature

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A New Mode of Chemical Reactivity for Metal-Free Hydrogen Activation by Lewis Acidic Boranes.

Bennett Elliot L EL   Lawrence Elliot J EJ   Blagg Robin J RJ   Mullen Anna S AS   MacMillan Fraser F   Ehlers Andreas W AW   Scott Daniel J DJ   Sapsford Joshua S JS   Ashley Andrew E AE   Wildgoose Gregory G GG   Slootweg J Chris JC  

Angewandte Chemie (International ed. in English) 20190513 25


We herein explore whether tris(aryl)borane Lewis acids are capable of cleaving H<sub>2</sub> outside of the usual Lewis acid/base chemistry described by the concept of frustrated Lewis pairs (FLPs). Instead of a Lewis base we use a chemical reductant to generate stable radical anions of two highly hindered boranes: tris(3,5-dinitromesityl)borane and tris(mesityl)borane. NMR spectroscopic characterization reveals that the corresponding borane radical anions activate (cleave) dihydrogen, whilst EP  ...[more]

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