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Practical H₂ supply from ammonia borane enabled by amorphous iron domain

Chemistry

Practical H₂ supply from ammonia borane enabled by amorphous iron domain

Y. Chen, Z. Lang, et al.

Discover the groundbreaking research by Yufeng Chen and colleagues on a new catalyst for ammonia borane hydrolysis that significantly outperforms existing benchmarks. This innovative catalyst not only provides impressive hydrogen production rates but also powers a commercial car fuel cell for over five hours!... show more
Abstract
Efficient catalysis of ammonia borane (AB) holds potential for realizing controlled energy release from hydrogen fuel and addressing cost challenges faced by hydrogen storage. Here, we report that amorphous domains on metallic Fe crystal structures (R-Fe₂O₃ Foam) can achieve AB catalytic performances and stability (turnover frequency (TOF) of 113.6 min⁻¹, about 771 L H₂ in 900 h, and 43.27 mL/(min·cm²) for 10 × 10 cm² of Foam) that outperform reported benchmarks (most <14 L H₂ in 45 h) by at least 20 times. These notable increases are enabled by the stable Fe crystal structure, while defects and unsaturated atoms in the amorphous domains form Fe-B intermediates that significantly lower the dissociation barriers of H₂O and AB. Given that the catalyst lifetime is a key determinant for the practical use in fuel cells, our R-Fe₂O₃ Foam also provides decent H₂ supply (180 mL H₂/min, AB water solution of 7.5 wt% H₂) in a driven commercial car fuel cell at stable power outputs (7.8 V and 1.6 A for at least 5 h). When considered with its facile synthesis method, these materials are potentially very promising for realizing durable high-performance AB catalysts and viable chemical storage in hydrogen powered vehicles.
Publisher
Nature Communications
Published On
Oct 23, 2024
Authors
Yufeng Chen, Zhongling Lang, Kun Feng, Kang Wang, Yangguang Li, Zhenhui Kang, Lin Guo, Jun Zhong, Jun Lu
Tags
Ammonia Borane
Hydrolysis
Catalyst
Hydrogen Production
Fe-B Intermediates
H₂ Supply
Fuel Cell
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