水性锌离子电池的电极/电解质界面工程

Yongwei Tang, Jin-Hong Li, Chen-Liang Xu, Mengting Liu, Bing Xiao, Peng-Fei Wang
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引用次数: 3

摘要

水性锌离子电池(AZIB)由于其低成本、本质安全和高理论容量,在大规模储能应用中具有很大的前景。然而,提供稳定的电极-电解质界面成为开发具有长循环寿命和高容量的高性能AZIB的主要挑战。在阴极侧,经常发生活性材料的溶解、副产物的形成和不令人满意的界面相容性。同时,锌金属阳极通常会不可避免地发生锌枝晶和寄生反应。阴极和阳极的电极-电解质界面问题最终将导致较差的电化学可逆性和快速的容量衰减。从这个角度出发,本文重点讨论了电极界面上出现的关键科学问题,并提出了相应的界面优化策略,包括表面改性和电解质优化,旨在基于对接口改进的理解和实际应用考虑,为高性能AZIB的设计提供指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Electrode/electrolyte interfacial engineering for aqueous Zn-ion batteries

Electrode/electrolyte interfacial engineering for aqueous Zn-ion batteries

Aqueous Zn-ion batteries (AZIBs) hold great promise for large-scale energy storage applications due to their low cost, intrinsic safety, and high theoretical capacity. However, the delivery of stable electrode–electrolyte interface becomes the main challenge for developing high-performance AZIBs with long cycle life and high capacity. On the cathode side, the dissolution of active materials, formation of byproducts, and unsatisfactory interfacial compatibility frequently occur. Meanwhile, the Zn metal anodes usually suffer from inevitable Zn dendrites and parasitic reactions. Both the electrode–electrolyte interface issues for the cathodes and anodes will finally result in poor electrochemistry reversibility and fast capacity decay. With this perspective, this review focuses on the key scientific issues occurred at the electrode interfaces, and also proposes corresponding interfacial optimization strategies, including surface modification and electrolyte optimization, aiming at providing guidelines for the design of high-performance AZIBs based on the understanding of interface improvement and practical application considerations.

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