Advancement in the Hydrogen Absorbing and Releasing Kinetics of MgH2 by Mixing with Small Percentages of Zn(BH4)2 and Ni

被引:0
作者
Young Jun Kwak
Hye Ryoung Park
Myoung Youp Song
机构
[1] Chonbuk National University,Department of Materials Engineering, Graduate School
[2] Chonnam National University,School of Chemical Engineering
[3] Chonbuk National University,Division of Advanced Materials Engineering, Hydrogen & Fuel Cell Research Center, Engineering Research Institute
来源
Metals and Materials International | 2018年 / 24卷
关键词
Hydrogen absorbing materials; Mechanical milling; Hydrogen; Thermal analysis; MgH; -based alloy;
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摘要
Zn(BH4)2 made in our former investigation and Ni were mixed with MgH2 to promote the hydrogen absorption and release features of Mg. A 96 w/o MgH2 + 2 w/o Ni + 2 w/o Zn(BH4)2 sample [named MgH2–4NZ] was prepared by milling in a planetary ball mill in a hydrogen atmosphere. The proportion of the additive was small (4 w/o) in order to increase hydrogen absorbing and releasing rates without majorly sacrificing the hydrogen-storage capacity. The hydrogen absorption and release features of the MgH2–4NZ were inspected in detail and compared with those of 99 w/o MgH2 + 1 w/o Zn(BH4)2 [named MgH2–1Z] and 95 w/o MgH2 + 2.5 w/o Ni + 2.5 w/o Zn(BH4)2 [named MgH2–5NZ] samples. The activation of the MgH2–4NZ was not required. The MgH2–4NZ had a useful hydrogen-storage capacity (the quantity of hydrogen absorbed after 60 min) of about 5.5 w/o at the first cycle. At the first cycle, the MgH2–4NZ absorbed 3.84 w/o hydrogen after 5 min and 5.47 w/o hydrogen after 60 min at 593 K in 12 bar hydrogen. The MgH2–4NZ had a higher releasing rate, larger amounts of hydrogen absorbed and released after 60 min, and a better cycling capability than the MgH2–1Z. Staying of Ni (as Mg2Ni) and a larger amount of Zn among particles is believed to have led to the better cycling capability of the MgH2–4NZ.
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页码:423 / 432
页数:9
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共 113 条
  • [1] Nakagawa T(2007)Korean J Mater. Trans. 48 556-undefined
  • [2] Ichikawa T(2007)Korean J J. Alloys Compd. 446–447 296-undefined
  • [3] Kojima Y(2008)Korean J J. Phys. Chem. Solids 69 2292-undefined
  • [4] Fujii H(2013)Korean J Int. J. Hydrogen Energy 38 8342-undefined
  • [5] Nakamori Y(2015)Korean J Int. J. Hydrogen Energy 40 1820-undefined
  • [6] Li H-W(1997)Korean J Acta Mater. 45 2271-undefined
  • [7] Kikuchi K(2008)Yap, M. Ismail Int. J. Hydrogen Energy 33 2268-undefined
  • [8] Aoki M(2008)undefined J. Alloys Compd. 462 294-undefined
  • [9] Miwa K(2015)undefined Korean J. Met. Mater. 53 500-undefined
  • [10] Towata S(2013)undefined Korean J. Met. Mater. 51 607-undefined