4.7 Article

Effects of Al and Sn on microstructure, corrosion behavior and electrochemical performance of Mg-Al-based anodes for magnesium-air batteries

期刊

JOURNAL OF ALLOYS AND COMPOUNDS
卷 859, 期 -, 页码 -

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2020.157755

关键词

Magnesium anode; Corrosion behavior; Discharge performance; beta-Mg17Al12 phase; Mg2Sn phase; Mg-air battery

资金

  1. Fundamental Research Funds for the Central Universities of Central South University Project of China [GCX20190897Y]
  2. Natural Science Foundation of Hunan Province of China [2018JJ2506]
  3. Key Research and Development Program of Hunan Province of China [2017GK2120]
  4. Natural Science Foundation of Shandong Province of China [ZR2017MEM005]
  5. 2015 Shandong Province Project of Outstanding Subject Talent Group of China
  6. Natural Science Foundation of China [51702277]

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The study shows that the addition of Al and Sn can improve the microstructure of Mg-Al based anodes and reduce hydrogen evolution rate. Different effects were observed in different alloys, with the addition of Al promoting the dissolution of magnesium matrix, while Sn propagation of Mg2Sn phases along the grain boundaries.
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.

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