Evans Hayden A, Yildirim Taner, Peng Peng, Cheng Yongqiang, Deng Zeyu, Zhang Qiang, Mullangi Dinesh, Zhao Dan, Canepa Pieremanuele, Breunig Hanna M, Cheetham Anthony K, Brown Craig M
Center for Neutron Research, National Institute of Standards and Technology, Gaithersburg, Maryland 20899, United States.
Energy Analysis and Environmental Impacts Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720, United States.
J Am Chem Soc. 2023 Oct 11;145(40):22150-22157. doi: 10.1021/jacs.3c08037. Epub 2023 Sep 28.
Long-duration storage of hydrogen is necessary for coupling renewable H with stationary fuel cell power applications. In this work, aluminum formate (ALF), which adopts the ReO-type structure, is shown to have remarkable H storage performance at non-cryogenic (>120 K) temperatures and low pressures. The most promising performance of ALF is found between 120 K and 160 K and at 10 bar to 20 bar. The study illustrates H adsorption performance of ALF over the 77 K to 296 K temperature range using gas isotherms, in situ neutron powder diffraction, and DFT calculations, as well as technoeconomic analysis (TEA), illustrating ALF's competitive performance for long-duration storage versus compressed hydrogen and leading metal-organic frameworks. In the TEA, it is shown that ALF's storage capacity, when combined with a temperature/pressure swing process, has advantages versus compressed H at a fraction of the pressure (15 bar versus 350 bar). Given ALF's performance in the 10 bar to 20 bar regime under moderate cooling, it is particularly promising for use in safe storage systems serving fuel cells.
将可再生氢气与固定式燃料电池电力应用相结合,需要对氢气进行长时间储存。在这项工作中,具有ReO型结构的甲酸铝(ALF)在非低温(>120K)温度和低压下表现出显著的储氢性能。ALF最具前景的性能出现在120K至160K之间以及10巴至20巴的压力下。该研究使用气体等温线、原位中子粉末衍射、密度泛函理论(DFT)计算以及技术经济分析(TEA),阐明了ALF在77K至296K温度范围内的氢吸附性能,表明ALF相对于压缩氢气和领先的金属有机框架在长时间储存方面具有竞争性能。在TEA中表明,当与变温/变压过程相结合时,ALF的储存容量在压力仅为压缩氢的一小部分(15巴对350巴)时就具有优势。鉴于ALF在适度冷却下10巴至20巴压力范围内的性能,它在用于燃料电池的安全储存系统中特别有前景。