首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Enhanced cycling stability and high rate dischargeability of A(2)B(7)-type La-Mg-Ni-based alloys by in-situ formed (La,Mg)(5)Ni-19 superlattice phase
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Enhanced cycling stability and high rate dischargeability of A(2)B(7)-type La-Mg-Ni-based alloys by in-situ formed (La,Mg)(5)Ni-19 superlattice phase

机译:通过原位形成(2)B(7)-Type La-Mg-Ni基合金的增强循环稳定性和高速率施力性(La,Mg)(5)Ni-19超晶格相

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摘要

In this work, various amounts of (La,Mg)(5)Ni-19 phase is successfully produced in a A(2)B(7)-type La0.75Mg0.25Ni3.5 alloy by zone heating the as-cast alloy at the peritectic reaction temperature of the (La,Mg)(5)Ni-19 phase (1203 K) for different durations. The formation process, electrochemical effects and functioning mechanism of the (La,Mg)(5)Ni-19 phase are studied. The as-cast alloy contains (La,Mg)(2)Ni-7 and LaNi5 main phases, and (La,Mg)(5)Ni-19 minor phase. During zone heating, the peritectic reaction between the LaNi5 solid phase and the melted (La,Mg)(2)Ni-7 liquid phase occurs, forming (La,Mg)(5)Ni-19 phase. Thus the (La,Mg)(5)Ni-19 phase abundance increases from 9.8 wt% (as-cast) to 46.2 wt% (heated for 24 h). The hydrogen desorption plateau pressure of the alloys increases with increasing (La,Mg)(5)Ni-19 phase abundance, contributing to fast hydrogen desorption and large current dischargeability. In addition, the (La,Mg)(5)Ni-19 phase network in the alloy matrix has a good structural stability against repeated hydrogen absorption/desorption, keeping the alloy from serious lattice destruction and crystal defects. Moreover, the discrete expansion/contraction between the LaNi5 phase and the superlattice phases during cycling decreases with the consumption of the LaNi5 phase, which relives the alloys' pulverization, and thus enhancing the oxidation resistance. Thereby, the cycling stability of the alloy electrodes of the 150th cycle increases from 65.4% (9.8 wt% (La,Mg)(5)Ni-19 phase) to 80.4% (46.2 wt% (La,Mg)(5)Ni-19 phase). (C) 2018 Elsevier B.V. All rights reserved.
机译:在这项工作中,通过加热AS铸造合金的区域成功地制备了各种量的(1a,Mg)(5)Ni-19相。通过区域加热铸造的区域成功制备了A(2)B(7)型-Type La0.75mg0.25Ni3.5。在不同持续时间的(La,Mg)(5)Ni-19相(1203k)的晶间反应温度下。研究了(LA,Mg)(5)Ni-19相的形成过程,电化学效应和功能机制。铸造合金含有(La,Mg)(2)Ni-7和Lani5主要相,(La,Mg)(5)Ni-19小相。在区域加热期间,发生Lani5固相和熔融(La,Mg)(2)Ni-7液相之间的晶反应,形成(La,Mg)(5)Ni-19相。因此,(LA,Mg)(5)Ni-19相大量从9.8wt%(浇铸)增加至46.2wt%(加热24小时)。合金的氢解吸平台压力随着(La,Mg)(5)Ni-19相丰度的增加而增加,有助于快速氢解吸和大电流放电性。另外,合金基质中的(LA,Mg)(5)Ni-19相网具有良好的结构稳定性,防止重复的氢吸收/解吸,使合金免于严重的晶格破坏和晶体缺陷。此外,在循环期间的Lani5相和超晶格相之间的离散膨胀/收缩随着LANI5相的消耗而减小,其涉及合金的粉碎,从而提高抗氧化性。由此,第150周期的合金电极的循环稳定性从65.4%增加(9.8wt%(la,mg)(5)Ni-19相)至80.4%(46.2wt%(la,mg)(5)ni -19阶段)。 (c)2018年elestvier b.v.保留所有权利。

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