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Study on the hydrogen storage performance mechanism of MgH2 co-modified by rare earth hydride and high entropy hydrogen storage alloy based on in-situ differentiation

作者:Haoyuan Zheng, Shuzhong Wang, Jin Chen, Hang Che, Yuqin Zheng, Shixuan He, Haizhen Liu, Lingchao Zhang, Xinhua Wang · 发表于:Materials Today Catalysis · 年份:2025 · DOI:10.1016/j.mtcata.2025.100130 · 被引用次数:10 · 研究领域:Hydrogen Storage and Materials、Hybrid Renewable Energy Systems、Metalloenzymes and iron-sulfur proteins

Owing to its high hydrogen storage capacity (7.6 wt.%), MgH 2 is regarded as a highly promising solid-state hydrogen storage material. Nonetheless, its commercialization is constrained by high thermodynamic stability and sluggish hydrogen sorption kinetics. Thus, catalyst introduction is essential to enhance MgH 2 ’s hydrogen storage performance. This study designed and synthesized a hydrogen storage high-entropy alloy, TiVCrZrNbCe. Upon doping with Ce to enhance activation, the alloy was combined with MgH 2 to fabricate a composite hydrogen storage system, thereby boosting the overall hydrogen storage properties of MgH 2 . Results indicate that the Ce-doped alloy eliminates the initial long hydrogen absorption induction period and exhibits rapid hydrogen absorption capability. The optimal MgH 2 /10 wt.% HEA composite for hydrogen storage incorporates a Ce-doped alloy and MgH 2 . MgH 2 /10 wt.% HEA shows initial/peak dehydrogenation temperatures of 205/270 °C, releases 6.05 wt.% hydrogen, and enables rapid hydrogen absorption at room temperature. The hydrogen sorption activation energies are reduced to 40.8/76.8 kJ mol -1 , and the capacity maintains well over ten cycles. Microstructure and mechanism analyses reveal that during ball milling of the MgH 2 -alloy, the Ce element in the alloy will interact with MgH 2 to partially absorb hydrogen to form CeH 2.51 in situ and generate a hydride FCC-MH phase. During hydrogen absorption/desorption, CeH 2.51 and the alloy serve as nuc...