Development of a New Composite Bimetallic Material to Increase the Storage Capacity of Hydrogen

被引:0
作者
Andreevna, Seromlyanova Ksenia [1 ]
Borisovna, Markova Ekaterina [1 ]
Genrihovich, Cherednichenko Alexander [1 ]
机构
[1] Eoples Friendship Univ Russia RUDN Univ, Moscow, Russia
来源
ADVANCES IN CLEAN AND GREEN ENERGY SOLUTIONS: ICCGE 2024 PROCEEDINGS | 2025年 / 1333卷
关键词
Materials; Hydrogen storage; MOF; Composite materials; Bimetallic materials;
D O I
10.1007/978-981-96-1812-5_12
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The paper has developed materials based on MOF-Y-BTC, MOF-Ho-BTC, MOF-(Ho-Y)-BTC for safe and efficient storage of hydrogen. The solvothermal method was used to obtain metallorginech frame compounds based on Y3+, Ho3+ and bimetallic composite frames based on them. It has been established that MOF-YBTC has a tetragonal crystal structure with a lattice type P with a spatial group number of 95, the MOF-Ho-BTC structure is characterized as tetragonal with a number of spatial groups of 43, the bimetallic MOF-(Ho-Y)-BTC also has a tetragonal syngony. In the MOF-(Ho-Y)-BTC structure, holmium and yttrium atoms are surrounded by oxygen atoms, which form a tetragonal bipyramide crystallizing according to the type of crystal lattice P. The volume of micro- (w0) and mesopores (ws) has the greatest value for the MOF-(Ho-Y)-BTC sample, which also correlates with the specific surface area calculated by the BET method, which is 892,6 m(2)/g. Total adsorption was quantified and amounted to MOF-Y-BTC 50 mmol/g, MOF-Ho-BTC 107 mmol/g, MOF-(Ho-Y)-BTC 122 mmol/g. At the same time, the hydrogen accumulated in the MOF interacts with various MOF centers (ionic and ligand), which leads to the implementation of an associative mechanism of adsorption and chemisorption.
引用
收藏
页码:127 / 134
页数:8
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