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Hydrogen Storage Kinetics of Nanocrystalline and Amorphous Mg2Ni-type Alloys |
Yanghuan ZHANG1,2,**( ),Zeming YUAN2,Tingting ZHAI2,Tai YANG2,Guofang ZHANG1,Dongliang ZHAO2 |
1. Key Laboratory of Integrated Exploitation of Baiyun Obo Multi-Metal Resources, Inner Mongolia University of Science and Technology, Baotou 014010 2. Department of Functional Material Research, Central Iron and Steel Research Institute, Beijing 100081 |
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Cite this article:
Yanghuan ZHANG,Zeming YUAN,Tingting ZHAI,Tai YANG,Guofang ZHANG,Dongliang ZHAO. Hydrogen Storage Kinetics of Nanocrystalline and Amorphous Mg2Ni-type Alloys. Chinese Journal of Materials Research, 2014, 28(11): 873-880.
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Abstract A series (Mg24Ni10Cu2)100-xNdx (x = 0, 5, 10, 15, 20) alloys with a microstructure of nanocrystalline and amorphous structure were prepared by melt spinning technology. The effect of spinning rate and Nd content on the microstructure and the hydrogen storage performance of the alloys was investigated. The results of XRD and TEM examination reveal that all the as-cast alloys exhibit a multiphase microstructure, i.e. Mg2Ni-type phase is the major component and there exist several secondary phases such as Mg6Ni, Nd5Mg41 and NdNi. Furthermore, the as-spun Nd-free alloy shows a microstructure of entire nanocrystallines, whereas the as-spun alloys with Nd addition exhibit a microstructure of nanocrystalline and amorphous structure, meaning that the addition of Nd facilitates the glass forming of the alloys. The measurement of the hydrogen storage kinetics indicates that the melt spinning and the Nd addition can significantly improve the hydrogen storage performance of the alloys either in gaseous atmosphere or by electrochemically charging, and with the increasing spin rate and the amount of Nd addition, the high rate discharge capability (HRD) of the alloys increases firstly and then declines, for which the enhanced hydrogen diffusion coefficient (D) and limiting current density (IL) and the increased charge transfer resistance (Rct) resulted from both the melt spinning and the Nd addition are possibly responsible.
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Received: 10 March 2014
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Fund: *Supported by National Natural Science Foundation of China Nos.51161015 & 51371094, and Natural Science Foundation of Inner Mongolia No.2011ZD10. |
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