Electrochemical activation of MnS as an efficient conversion-type Cu2+ storage electrode

Nan Huang , Chenqi Yao , Juanjuan Cheng , Fawang Li , Yunzhuo Zhao , Yun Ou , Longfei Liu
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Abstract

Electrochemical activation can turn inactive materials into active materials in situ for energy storage facilely, controllably and efficiently, which makes metal sulfides feasible for Cu2+ storage based on electrochemical activated into CuS. Among common heavy metal sulfides, MnS has the highest solubility product and high Cu2+ adsorption and exchange rate in the copper removal by vulcanization in nickel electrolytic anodic solution. Here, MnS is electrochemical activated in situ in aqueous Cu-ion battery, and the effects of crystal structure and particle size on the electrochemical activation of MnS were revealed. The results show that both α, γ-MnS can be electrochemical activated, and activation cycling number is related to the particle size of MnS. When the MnS particle size is ball-milled small enough (1–2 μm), MnS will be completely transformed into CuS during the first discharge process, and then CuS↔Cu2S will participate in the reversible conversion reaction for copper storage. When the MnS particle size is larger (> 10 μm), the α-MnS electrode capacity gradually increases and becomes stable after 30 cycles, and the capacity remains at 458.6 mAh g–1 after 300 cycles.
电化学活化 MnS 作为高效转换型 Cu2+ 储存电极
电化学活化可以方便、可控、高效地将非活性材料就地转化为储能的活性材料,这使得基于电化学活化为 CuS 的金属硫化物用于 Cu2+ 储能成为可能。在常见的重金属硫化物中,MnS的溶度积最高,在镍电解阳极溶液中硫化除铜时具有较高的Cu2+吸附和交换率。本文对MnS在水性铜离子电池中进行了原位电化学活化,并揭示了晶体结构和粒度对MnS电化学活化的影响。结果表明,α、γ-MnS都能被电化学活化,且活化循环数与MnS的粒度有关。当 MnS 的粒径足够小(1-2 μm)时,MnS 会在第一次放电过程中完全转化为 CuS,然后 CuS↔Cu2S 会参与可逆转化反应以储存铜。当 MnS 粒径较大(10 μm)时,α-MnS 电极的容量会逐渐增加,并在 30 个循环后趋于稳定,300 个循环后容量仍保持在 458.6 mAh g-1 的水平。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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