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非晶态铁域实现的来自硼氨烷的实用氢供应。

Practical H supply from ammonia borane enabled by amorphous iron domain.

作者信息

Chen Yufeng, Lang Zhongling, Feng Kun, Wang Kang, Li Yangguang, Kang Zhenhui, Guo Lin, Zhong Jun, Lu Jun

机构信息

Institute of Functional Nano and Soft Materials Laboratory (FUNSOM), Jiangsu Key Laboratory for Carbon-Based Functional Materials & Devices, Soochow University, Suzhou, China.

Key Laboratory of Polyoxometalate and Reticular Material Chemistry of Ministry of Education, Faculty of Chemistry, Northeast Normal University, Changchun, China.

出版信息

Nat Commun. 2024 Oct 23;15(1):9113. doi: 10.1038/s41467-024-53574-x.

DOI:10.1038/s41467-024-53574-x
PMID:39438482
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11496879/
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-FeO Foam) can achieve AB catalytic performances and stability (turnover frequency (TOF) of 113.6 min, about 771 L H in 900 h, and 43.27 mL/(min·cm) for 10×10 cm of Foam) that outperform reported benchmarks (most <14 L H 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 HO and AB. Given that the catalyst lifetime is a key determinant for the practical use in fuel cells, our R-FeO Foam also provides decent H supply (180 mL H/min, AB water solution of 7.5 wt% H) 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.

摘要

氨硼烷(AB)的高效催化对于实现氢燃料的可控能量释放以及应对储氢面临的成本挑战具有潜力。在此,我们报告金属铁晶体结构(R-FeO泡沫)上的非晶域能够实现AB的催化性能和稳定性(周转频率(TOF)为113.6分钟,900小时内约771升氢气,10×10厘米泡沫的43.27毫升/(分钟·平方厘米)),其性能优于已报道的基准(大多数在45小时内小于14升氢气)至少20倍。这些显著的提升得益于稳定的铁晶体结构,而非晶域中的缺陷和不饱和原子形成了Fe-B中间体,显著降低了HO和AB的解离能垒。鉴于催化剂寿命是燃料电池实际应用的关键决定因素,我们的R-FeO泡沫在稳定功率输出(7.8伏和1.6安至少5小时)的商用汽车燃料电池中也能提供可观的氢气供应(180毫升氢气/分钟,7.5重量%氢气的AB水溶液)。考虑到其简便的合成方法,这些材料对于实现耐用的高性能AB催化剂以及氢动力车辆中可行的化学储氢具有潜在的巨大前景。

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