Improved the hydrogen sorption properties of MgH2 by CeMnZr solid solution

Magnesium hydride (MgH 2 ) is one of the promising solid-state hydrogen storage materials because of its high capacity, abundant resource and excellent reversibility. However, the high dehydrogenation temperatures and sluggish kinetics restrict its practical application. It was found that doping cat...

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Veröffentlicht in:The Korean journal of chemical engineering 2023, 40(1), 274, pp.104-111
Hauptverfasser: Cheng, Ying, Zhang, Wei, Shi, Biqing, Li, Siqi, Dong, Bing, Quan, Yulian, Ji, Xianbin
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Sprache:eng
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Zusammenfassung:Magnesium hydride (MgH 2 ) is one of the promising solid-state hydrogen storage materials because of its high capacity, abundant resource and excellent reversibility. However, the high dehydrogenation temperatures and sluggish kinetics restrict its practical application. It was found that doping catalysts could significantly improve the hydrogen storage properties of MgH 2 . The solid solution Ce 0.8 Mn 0.1 Zr 0.1 O 2 (denoted as CeMnZr) with abundant oxygen vacancy was synthesized and its catalytic influence on the hydrogen sorption properties of MgH 2 have been investigated. CeMnZr modified MgH 2 composite showed a reduced initial decomposition temperature, almost 62 K lower than the pristine MgH 2 . At 473 K, MgH 2 -CeMnZr composite had an absorption capacity of 4.08 wt% hydrogen within 3,500 s, which was about twice better than the pure MgH 2 at same condition. MgH 2 -CeMnZr sample could desorb 2.56 wt% of H 2 within 3,500 s at 573 K compared to low desorption rate and 0.85 wt% H 2 by as-milled MgH 2 . The activation energy (Ea) for CeMnZr codoped MgH 2 sample is about 50kJ·mol −1 lower than the milled MgH 2 . Based on the characteration analysis, the in-situ generated MgO and CeH 2.51 species as well as abundant oxygen vacancy is believed to play synergistic catalytic effects in enhancing the hydrogen storage properties of MgH 2 .
ISSN:0256-1115
1975-7220
DOI:10.1007/s11814-022-1287-9