水电池用锌阳极的晶体学工程

IF 42.9 Q1 ELECTROCHEMISTRY eScience Pub Date : 2023-06-01 DOI:10.1016/j.esci.2023.100120
Shuang Wu , Zhenglin Hu , Pan He , Lingxiao Ren , Jiaxing Huang , Jiayan Luo
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引用次数: 7

摘要

由于其固有的安全性和环境友好性,水锌离子电池被认为是取代碱金属系统的最合适的候选者。然而,多晶锌阳极在水环境中仍然存在巨大的问题,如枝晶生长和副反应。尽管已经通过界面改性和电解质设计做出了许多努力来解决这些障碍,但研究人员尚未能够改善锌阳极固有的热力学稳定性和离子沉积行为。从结晶度的角度认识和探索先进的阳极构造方法势在必行。本文探讨了精确调控金属锌晶体特征的可行性,分析了目前报道的结构锌制备策略的挑战和优点,并为水相锌的大规模生产和商业应用提供了建设性的建议。
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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Crystallographic engineering of Zn anodes for aqueous batteries

With their intrinsic safety and environmental benignity, aqueous Zn-ion batteries (ZIBs) have been considered the most appropriate candidates for replacing alkali metal systems. However, polycrystalline Zn anodes in aqueous environments still pose enormous issues, such as dendrite growth and side reactions. Although many efforts have been made to address these obstacles through interphase modification and electrolyte design, researchers have not been able to improve the inherent thermodynamic stability and ion deposition behavior of the Zn anode. It is imperative to understand and explore advanced anode construction methods from the perspective of crystallinity. This review delves into the feasibility of precisely regulating the crystallographic features of metallic zinc, examines the challenges and merits of reported strategies for fabricating textured zinc, and offers constructive suggestions for the large-scale production and commercial application of aqueous ZIBs.

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