Investigation on the hydriding/dehydriding properties of Mg95Ni5-30wt%La0.7Mg0.3 Ni2.8Co0.5 composite

Yan Fang Liu, Yun Feng Zhu, Feng Hua, Zhi Bing Liu, Li Quan Li

Research output: Contribution to journalArticlepeer-review

Abstract

Mg95Ni5 was prepared by hydriding combustion synthesis (HCS) from the powder mixtures of Mg and Ni, and then the HCS product together with 30wt% La0.7Mg0.3Ni2.8Co0.5 alloy were subjected to mechanical milling for 5, 10, 15 and 20 h, respectively. The HCS product was also milled for 10 h for comparison. By means of X-ray diffraction (XRD), scanning electron microscopy (SEM), energy dispersive X-ray spectrometer (EDX) and gas reaction controller, the phase structure, microstructure and hydriding/dehydriding properties of the composites were studied in detail. It was found the composite milled for 10 h had the best hydriding/dehydriding properties. It required only 50 s to absorb its saturated hydrogen capacity of 3.78wt% at 373 K and desorbed 3.83wt% hydrogen within 1800 s at 523 K. Moreover, the dehydriding temperature onset of the composite was 425 K, which was 35 K lower than that of Mg95Ni5. The improved hydriding/dehydriding properties were related greatly with the structures of the composites, and the addition of La0.7Mg0.3Ni2.8Co0.5 could improve the dehydriding kinetics of the composites.

Original languageEnglish
Pages (from-to)809-812
Number of pages4
JournalGongneng Cailiao/Journal of Functional Materials
Volume40
Issue number5
StatePublished - May 2009

Keywords

  • Composite
  • Hydriding combustion synthesis
  • Hydriding/dehydriding properties
  • Mechanical milling
  • Mg-based hydrogen storage alloys

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