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官能团修饰的UiO-66对氨硼烷脱氢反应的影响

Effect of Functional Group-Modified UiO-66 on the Dehydrogenation of Ammonia Borane.

作者信息

Xi Senliang, Xu Dawei, Chen Renzeng, Yao Wenhao, Wu Wenying, Zhang Teng, Yu Liang

机构信息

Key Laboratory of Cluster Science Ministry of Education, Beijing Key Laboratory of Photoelectronic/Electrophotonic Conversion Materials, Advanced Research Institute of Multidisciplinary Science, School of Chemistry and Chemical Engineering, Beijing Institute of Technology, Beijing 100081, China.

Advanced Technology Research Institute (Jinan), Beijing Institute of Technology, Jinan 250000, China.

出版信息

Molecules. 2025 Mar 27;30(7):1487. doi: 10.3390/molecules30071487.

Abstract

Ammonia borane (AB) has attracted much attention in the field of solid-state hydrogen storage due to its high hydrogen storage capacity. Nanoconfinement in UiO-66 can reduce the hydrogen release temperature. In particular, terephthalic acid was used as a linker to further improve the dehydrogenation properties through the modification of -NH, -OH, -NO, -Br, and -F groups. The hydrogen release content of 0.5AB/UiO-66 was 1.98 wt.%, whereas the hydrogen release content of UiO-66-2OH modified by -OH groups increased to 3.85 wt.%. The non-covalent interaction results show that -NH and -OH preferred adsorption with -BH, and the H in -NH and -OH were able to interact directly with the H in AB to modify the dehydrogenation process of AB, whereas -NO, -Br, and -F indirectly affected the charge density of hydrogen atoms in AB to alter the dehydrogenation property of AB. The modification of functional groups provides a theoretical basis for the design of high-performance MOF nanoconfinement AB composite hydrogen storage materials.

摘要

氨硼烷(AB)因其高储氢容量而在固态储氢领域备受关注。在UiO-66中的纳米限域效应可以降低氢释放温度。特别是,对苯二甲酸被用作连接体,通过修饰-NH、-OH、-NO、-Br和-F基团来进一步改善脱氢性能。0.5AB/UiO-66的氢释放量为1.98 wt.%,而经-OH基团修饰的UiO-66-2OH的氢释放量增加到了3.85 wt.%。非共价相互作用结果表明,-NH和-OH优先与-BH吸附,且-NH和-OH中的H能够直接与AB中的H相互作用,从而改变AB的脱氢过程,而-NO、-Br和-F则间接影响AB中氢原子的电荷密度,进而改变AB的脱氢性能。官能团的修饰为高性能MOF纳米限域AB复合储氢材料的设计提供了理论依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f2c4/11990169/d720dd63c686/molecules-30-01487-g001.jpg

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