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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Effects of Al and Sn on microstructure, corrosion behavior and electrochemical performance of Mg-Al-based anodes for magnesium-air batteries
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Effects of Al and Sn on microstructure, corrosion behavior and electrochemical performance of Mg-Al-based anodes for magnesium-air batteries

机译:Al和Sn对镁 - 空气电池Mg-Al基阳极微观结构,腐蚀行为和电化学性能的影响

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摘要

Three types of Mg-Al-based anodes Mg-3Al-Zn, Mg-6Al-Zn, and Mg-6Al-Sn (wt.%) alloys were produced. The influences of Al and Sn on microstructure, corrosion behavior, electrochemical property, and battery performance were studied. The experimental results show that the introduction of Al and Sn leads to the significant grain refinement and the decrease of hydrogen evolution rate of Mg-Al-based anodes. The more Al element added in alloy, the more beta-Mg17Al12 phases scattered at the grain boundaries, which can accelerate the dissolution of magnesium matrix. Thus, Mg-6Al-Zn manifests stronger discharge activity than Mg-3Al-Zn. The added Sn is capable to propagate Mg2Sn phases along the grain boundaries and to suppress the precipitate of coarse beta-Mg17Al12 phases in Mg-6Al-Sn. Significantly, the fine grain with tiny second phases existed in Mg-6Al-Sn is beneficial to facilitate the self-peeling of discharge products by forming the micro-cracks on the alloy surface during discharge process. The results suggest that Mg-6Al-Sn exhibits a higher electrochemical activity and utilization efficiency, specifically, a better discharge stability at the large current density for long-time. The average cell voltage, power density, specific capacity and anodic efficiency of Mg-6Al-Sn anode for Mg-air battery within 12 hat 50 mA cm(-2) were 1.097 V, 54.85 mW cm(-2), 1423 mA h g(-1) and 63.7%, respectively. (C) 2020 Published by Elsevier B.
机译:制备了三种Mg-Al基阳极Mg-3Al-Zn、Mg-6Al-Zn和Mg-6Al-Sn(重量百分比)合金。研究了铝和锡对电池微观结构、腐蚀行为、电化学性能和电池性能的影响。实验结果表明,Al和Sn的引入使Mg-Al基阳极的晶粒显著细化,析氢速率降低。合金中添加的铝元素越多,晶界上分散的β-Mg17Al12相越多,这会加速镁基体的溶解。因此,Mg-6Al-Zn比Mg-3Al-Zn表现出更强的放电活性。添加的Sn能够沿着晶界传播Mg2Sn相,并抑制Mg-6Al-Sn中粗β-Mg17Al12相的沉淀。值得注意的是,Mg-6Al-Sn中存在细小的第二相晶粒,在放电过程中在合金表面形成微裂纹,有利于放电产物的自剥离。结果表明,Mg-6Al-Sn具有更高的电化学活性和利用效率,特别是在大电流密度下,具有更好的长时间放电稳定性。镁空气电池Mg-6Al-Sn阳极在12~50ma-cm(-2)范围内的平均电池电压、功率密度、比容量和阳极效率分别为1.097v、54.85mw-cm(-2)、1423ma-h-g(-1)和63.7%。(C) 2020年由爱思唯尔B.出版。

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