Regulating the relationship between Zn2+ and water molecules in electrolytes for aqueous zinc-based batteries

Jiahao Chen, Zhongfu Yan, Kun Li, Anjun Hu, Borui Yang, Ting Li, Miao He, Yuanjian Li, Zhi Wei Seh, Jianping Long
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Abstract

Aqueous zinc-based batteries (AZBs) with the advantages of high safety, low cost, and satisfactory energy density are regarded as one of the most promising candidates for future energy storage systems. Rampant dendrite growth and severe side reactions that occur at the Zn anode hinder its further development. Recently, a growing number of studies have demonstrated that side reactions are closely related to the active water molecules belonging to the Zn2+ solvated structure in the electrolyte, and reducing the occurrence of side reactions by regulating the relationship between the above two has proven to be a reliable pathway. Nevertheless, a systematic summary of the intrinsic mechanisms and practical applications of the route is lacking. This review presents a detailed description of the close connection between H2O and side reactions at Zn anodes and gives a comprehensive review of experimental strategies to inhibit side reactions by modulating the relationship between Zn2+ and H2O, including anode interface engineering and electrolyte engineering. In addition, further implementation of the above strategies and the modification means for future Zn anodes are discussed.

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调节锌基水性电池电解质中 Zn2+ 与水分子之间的关系
锌基水电池(AZBs)具有安全性高、成本低和能量密度令人满意等优点,被认为是未来储能系统最有前途的候选产品之一。但锌阳极的树枝状生长和严重的副反应阻碍了其进一步发展。最近,越来越多的研究表明,副反应与电解质中属于 Zn2+ 溶解结构的活性水分子密切相关,而通过调节上述两者之间的关系来减少副反应的发生已被证明是一条可靠的途径。然而,目前还缺乏对该途径内在机理和实际应用的系统总结。本综述详细描述了 H2O 与锌阳极副反应之间的密切联系,并全面评述了通过调节 Zn2+ 与 H2O 之间的关系来抑制副反应的实验策略,包括阳极界面工程和电解质工程。此外,还讨论了上述策略的进一步实施以及未来锌阳极的改性手段。
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