氢气储存
催化作用
氢
双金属片
氢化镁
材料科学
吸附低温
化学工程
氢化物
镁
复合数
氢燃料
无机化学
制氢
吸收(声学)
活化能
氢气净化器
化学
化学稳定性
分子
作者
Huafeng Fu,Shiteng Long,Jia Hu,Jian Liu,Hansong Xue,Yu’an Chen,fusheng Pan
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-01-21
卷期号:20 (4): 3904-3916
被引量:1
标识
DOI:10.1021/acsnano.5c21374
摘要
To address the challenges of high hydrogen release temperatures, sluggish kinetics, and inadequate cycling performance of magnesium hydride (MgH2), we developed the niobium-based bimetallic compound catalyst CuNb2O6 with excellent catalytic performance. It was found that the MgH2/CuNb2O6 composite material achieved 4.28 wt % hydrogen uptake within 10 min at 100 °C, and even at a lower temperature of 50 °C, it has 2 wt % hydrogen absorption capacity within 60 min, showing excellent hydrogen absorption performance. For hydrogen desorption, the MgH2/CuNb2O6 composite material demonstrated exceptional midtemperature hydrogen release kinetics, with 4.65 wt % hydrogen released within 20 min at 225 °C. The apparent activation energy for hydrogen release of MgH2/CuNb2O6 was determined to be 50.95 kJ/mol, which was approximately 66.4% less than that of ball-milled magnesium hydride. Cyclic testing further confirmed the stability of the MgH2/CuNb2O6 composite, with its hydrogen storage capacity stabilizing at 5.21 wt % after 50 cycles. Catalytic mechanism studies revealed that the MgH2/CuNb2O6 composite undergoes in situ reconstruction of multiple-phase catalytically active species, which effectively improved the hydrogen storage performance of MgH2. This work innovatively constructed a representative Mg2Cu@NbO2 heterojunction, and the results showed that hydrogen molecules were significantly activated at the interface, demonstrating the synergistic catalytic effect between the Cu and Nb species. This study provides a possible approach for designing high-efficiency catalysts for magnesium-based hydrogen storage materials.
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