Recent Advances on Mg-Li-Al Systems for Solid-State Hydrogen Storage: A Review

被引:18
|
作者
Sazelee, Noratiqah [1 ]
Ali, Nurul Amirah [1 ]
Yahya, Muhammad Syarifuddin [1 ]
Mustafa, Nurul Shafikah [1 ]
Yap, Firdaus Abdul Halim [2 ]
Mohamed, Saiful Bahri [2 ]
Ghazali, Muhammad Zahruddin [3 ]
Suwarno, Suwamo [4 ]
Ismail, Mohammad [1 ]
机构
[1] Univ Malaysia Terengganu, Fac Ocean Engn Technol & Informat, Energy Storage Res Grp, Kuala Nerus, Malaysia
[2] Univ Sultan Zainal Abidin, Fac Innovat Design & Technol, Kuala Nerus, Malaysia
[3] Casa Armada Sdn Bhd, Kemaman, Malaysia
[4] Inst Teknol Sepuluh Nopember ITS, Dept Mech Engn, Surabaya, Indonesia
关键词
Mg-Li-Al system; magnesium hydride; lithium alanate; hydrogen storage; solid-state storage; DEHYDROGENATION PROPERTIES; TRANSITION-METAL; LIQUID-HYDROGEN; DESORPTION PROPERTIES; REACTION-KINETICS; HYDRIDE; MAGNESIUM; ENERGY; DESTABILIZATION; PERFORMANCE;
D O I
10.3389/fenrg.2022.875405
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The problem of providing compact and safe storage solutions for hydrogen in solid-state materials is demanding and challenging. The storage solutions for hydrogen required high-capacity storage technologies, which preferably operate at low pressures and have good performances in the kinetics of absorption/desorption. Metal hydrides such as magnesium hydride (MgH2) are promising candidates for such storage solutions, but several drawbacks including high onset desorption temperature (>400 degrees C) and slow sorption kinetics need to be overcome. In this study, we reviewed the recent developments in the hydrogen storage performance development of MgH2 and found that the destabilization concept has been extensively explored. Lithium alanate or LiAlH4 has been used as a destabilizing agent in MgH2-LiAlH4 (Mg-Li-Al) due to its high capacity of hydrogen, which is 10.5 wt.%, and low onset desorption temperature (similar to 150 degrees C). In this article, a review of the recent advances in the Mg-Li-Al system for the solid-state hydrogen storage material is studied. We discussed the effect of the ratio of MgH2 and LiAlH4, milling time, and additives in the Mg-Li-Al system. After the destabilization concept was introduced, the onset of the desorption temperature and activation energy of MgH2 were reduced, and the sorption properties improved. Further study showed that the intermetallic alloys of Li0.92Mg4.08 and Mg17Al12 that were formed in situ during the dehydrogenation process provide synergetic thermodynamic and kinetic destabilization in the Mg-Li-Al composite system.De/rehydrogenation measurements indicate that the intermetallic alloys of Li0.92Mg4.08 and Mg17Al12 were fully reversibly absorbed and desorbed hydrogen. Next, the remaining challenges and a possible development strategy of the Mg-Li-Al system are analyzed. This review is the first systematic study that focuses on the recent advances in the Mg-Li-Al system for storage solutions for hydrogen in solid-state materials.
引用
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页数:15
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