氢气储存
氢化镁
材料科学
氢
解吸
氢化物
化学工程
球磨机
储能
脱氢
镁
无机化学
催化作用
化学
物理化学
冶金
有机化学
热力学
吸附
功率(物理)
物理
工程类
作者
N.A. Sazelee,Muhamad Faiz Md Din,M. Ismail,Sami‐ullah Rather,Hisham S. Bamufleh,Hesham Alhumade,Aqeel Ahmad Taimoor,Usman Saeed
出处
期刊:Materials
[MDPI AG]
日期:2023-03-19
卷期号:16 (6): 2449-2449
被引量:10
摘要
One of the ideal energy carriers for the future is hydrogen. It has a high energy density and is a source of clean energy. A crucial step in the development of the hydrogen economy is the safety and affordable storage of a large amount of hydrogen. Thus, owing to its large storage capacity, good reversibility, and low cost, Magnesium hydride (MgH2) was taken into consideration. Unfortunately, MgH2 has a high desorption temperature and slow ab/desorption kinetics. Using the ball milling technique, adding cobalt lanthanum oxide (LaCoO3) to MgH2 improves its hydrogen storage performance. The results show that adding 10 wt.% LaCoO3 relatively lowers the starting hydrogen release, compared with pure MgH2 and milled MgH2. On the other hand, faster ab/desorption after the introduction of 10 wt.% LaCoO3 could be observed when compared with milled MgH2 under the same circumstances. Besides this, the apparent activation energy for MgH2-10 wt.% LaCoO3 was greatly reduced when compared with that of milled MgH2. From the X-ray diffraction analysis, it could be shown that in-situ forms of MgO, CoO, and La2O3, produced from the reactions between MgH2 and LaCoO3, play a vital role in enhancing the properties of hydrogen storage of MgH2.
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