2015Chemistry of MaterialsOpen access

Mild Dehydrogenation of Ammonia Borane Complexed with Aluminum Borohydride

Iurii Dovgaliuk, Cécile S. Le Duff, Koen Robeyns, Michel Devillers, Yaroslav Filinchuk

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Abstract

Ammonia borane is a promising hydrogen store. However, its dehydrogenation is stepwise, nonreversible, and accompanied by formation of undesirable byproducts. We report on a new Al(BH 4 ) 3 ·NH 3 BH 3 complex containing 17.7 wt % hydrogen, which undergoes a two-step thermal decomposition below 100 °C. The combination of volumetric, gravimetric, crystallographic, and nuclear magnetic resonance studies shows that both in the solid state and in toluene solutions, the Al-coordinated NH 3 BH 3 already releases two H 2 molecules per Al at 70 °C. Contrary to that of the pristine ammonia borane, this process is endothermic, suggesting a possibility for direct rehydrogenation. The dehydrogenation of Al(BH 4 ) 3 ·NH 3 BH 3 contrasts with the complete destruction of alkali and alkaline earth metal borohydride complexes with ammonia borane in the first decomposition step. Other Al-based Lewis acids, less challenging with respect to the stability and safety than Al(BH 4 ) 3, may be good agents for supporting the reversible dehydrogenation of NH 3 BH 3 under mild conditions.

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What this paper is about

Ammonia borane is a promising hydrogen store. However, its dehydrogenation is stepwise, nonreversible, and accompanied by formation of undesirable byproducts. We report on a new Al(BH 4 ) 3 ·NH 3 BH 3 complex containing 17.7 wt % hydrogen, which undergoes a two-step thermal decomposition below 100 °C. The combination of volumetric, gravimetric, crystallographic, and nuclear magnetic resonance studies shows that both in the solid state and in toluene solutions, the Al-coordinated NH 3 BH 3 already releases two H 2 molecules per Al at 70 °C. Contrary to that of the pristine ammonia borane, this process is endothermic, suggesting a possibility for direct rehydrogenation. The dehydrogenation of Al(BH 4 ) 3 ·NH 3 BH 3 contrasts with the complete destruction of alkali and alkaline earth metal borohydride complexes with ammonia borane in the first decomposition step. Other Al-based Lewis acids, less challenging with respect to the stability and safety than Al(BH 4 ) 3, may be good agents for supporting the reversible dehydrogenation of NH 3 BH 3 under mild conditions.

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Available abstract

Ammonia borane is a promising hydrogen store. However, its dehydrogenation is stepwise, nonreversible, and accompanied by formation of undesirable byproducts. We report on a new Al(BH 4 ) 3 ·NH 3 BH 3 complex containing 17.7 wt % hydrogen, which undergoes a two-step thermal decomposition below 100 °C. The combination of volumetric, gravimetric, crystallographic, and nuclear magnetic resonance studies shows that both in the solid state and in toluene solutions, the Al-coordinated NH 3 BH 3 already releases two H 2 molecules per Al at 70 °C. Contrary to that of the pristine ammonia borane, this process is endothermic, suggesting a possibility for direct rehydrogenation. The dehydrogenation of Al(BH 4 ) 3 ·NH 3 BH 3 contrasts with the complete destruction of alkali and alkaline earth metal borohydride complexes with ammonia borane in the first decomposition step. Other Al-based Lewis acids, less challenging with respect to the stability and safety than Al(BH 4 ) 3, may be good agents for supporting the reversible dehydrogenation of NH 3 BH 3 under mild conditions.

Key concepts: Ammonia borane, Dehydrogenation, Borohydride, Chemistry, Hydrogen storage, Inorganic chemistry, Ammonia, Decomposition

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