锌
乙腈
电解质
水溶液
阳极
电池(电)
金属
无机化学
化学
电镀(地质)
腐蚀
化学工程
电化学
材料科学
冶金
有机化学
电极
功率(物理)
物理化学
工程类
物理
量子力学
地球物理学
地质学
作者
Stefan Ilić,Michael J. Counihan,Sydney N. Lavan,Yingjie Yang,Yinke Jiang,Diwash Dhakal,Julian Mars,Emma N. Antonio,Luis Kitsu Iglesias,Timothy T. Fister,Yong Zhang,Edward J. Maginn,Michael F. Toney,Robert F. Klie,Justin G. Connell,Sanja Tepavcevic
出处
期刊:ACS energy letters
[American Chemical Society]
日期:2023-12-20
卷期号:9 (1): 201-208
被引量:10
标识
DOI:10.1021/acsenergylett.3c02504
摘要
Aqueous zinc-ion batteries (ZIBs) employing zinc metal anodes are gaining traction as batteries for moderate to long duration energy storage at scale. However, corrosion of the zinc metal anode through reaction with water limits battery efficiency. Much research in the past few years has focused on additives that decrease hydrogen evolution, but the precise mechanisms by which this takes place are often understudied and remain unclear. In this work, we study the role of an acetonitrile antisolvent additive in improving the performance of aqueous ZnSO4 electrolytes using experimental and computational techniques. We demonstrate that acetonitrile actively modifies the interfacial chemistry during Zn metal plating, which results in improved performance of acetonitrile-containing electrolytes. Collectively, this work demonstrates the effectiveness of solvent additive systems in battery performance and durability and provides a new framework for future efforts to optimize ion transport and performance in ZIBs.
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