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首页> 外文期刊>Journal of Materials Science >Effects of the substitution of Al for Ni on the structure and electrochemical performance of La0.7Mg0.3Ni2.55 ? x Co0.45Al x (x = 0–0.4) electrode alloys
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Effects of the substitution of Al for Ni on the structure and electrochemical performance of La0.7Mg0.3Ni2.55 ? x Co0.45Al x (x = 0–0.4) electrode alloys

机译:Al替代Ni对La0.7 Ni2.55的结构和电化学性能的影响? x Co0.45 Al x (x = 0–0.4)电极合金

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摘要

In order to improve the cycling stability of La–Mg–Ni system (PuNi3-type) hydrogen storage alloy, Ni in the alloy was partially substituted by Al, and La0.7Mg0.3Ni2.55 ? x Co0.45Al x (x = 0, 0.1, 0.2, 0.3, 0.4) electrode alloys were prepared by casting and rapid quenching. The effects of the substitution of Al for Ni on the structure and electrochemical performance of the as-cast and quenched alloys were investigated in detail. The results obtained by XRD, SEM and TEM show that the substitution of Al for Ni has an inappreciable influence on the abundance of the LaNi2 phase in the as-quenched alloy, while it increases the amount of the LaNi2 phase in the as-cast alloys. In addition, the substitution of Al for Ni is unfavourable for the formation of an amorphous in the as-quenched alloy. The results obtained by the electrochemical measurement indicate that the cycling stabilities of the as-cast and quenched alloys are significantly ameliorated with increasing Al content. When Al content increases from 0 to 0.4, the cycle life of the as-cast and quenched (30 m/s) alloys enhances from 72 to 132 cycles and from 100 to 136 cycles, respectively.
机译:为了提高La–Mg–Ni系(PuNi3 型)储氢合金的循环稳定性,合金中的Ni部分被Al和La0.7 Mg0.3 Ni2.55?通过铸造和快速淬火制备x Co0.45 Al x (x = 0,0.1,0.2,0.3,0.4)电极合金。详细研究了用Al代替Ni对铸态和淬火合金的组织和电化学性能的影响。 XRD,SEM和TEM的结果表明,Al代替Ni对淬火后合金中LaNi2 相的丰度影响不大,而增加了LaNi2 铸态合金中的相。另外,用Al代替Ni不利于在淬火后的合金中形成非晶。通过电化学测量获得的结果表明,随着Al含量的增加,铸态和淬火合金的循环稳定性显着改善。当Al含量从0增加到0.4时,铸态和淬火(30 m / s)合金的循环寿命分别从72个循环增加到132个循环和从100个增加到136个循环。

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  • 来源
    《Journal of Materials Science 》 |2007年第19期| 8172-8177| 共6页
  • 作者单位

    Department of Functional Material Research Central Iron and Steel Research Institute Beijing 100081 P.R. China;

    Department of Functional Material Research Central Iron and Steel Research Institute Beijing 100081 P.R. China;

    School of Material Inner Mongolia University of Science and Technology Baotou Inner Mongolia 014010 P.R. China;

    School of Material Inner Mongolia University of Science and Technology Baotou Inner Mongolia 014010 P.R. China;

    Department of Functional Material Research Central Iron and Steel Research Institute Beijing 100081 P.R. China;

    Department of Functional Material Research Central Iron and Steel Research Institute Beijing 100081 P.R. China;

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