Yang Yuqing, Qin Liping, He Qiong, Yin Chengjie, Lei Yongpeng, Liang Shuquan, Fang Guozhao
School of Materials Science and Engineering, Key Laboratory of Electronic Packaging and Advanced Functional Materials of Hunan Province, Central South University, Changsha 410083, China.
College of Biological and Chemical Engineering, Guangxi University of Science and Technology, Nanning 545006, China.
Sci Bull (Beijing). 2025 Jan 15;70(1):104-124. doi: 10.1016/j.scib.2024.10.025. Epub 2024 Oct 21.
Aqueous zinc metal batteries (AZMBs) have received widespread attention for large-scale sustainable energy storage due to their low toxicity, safety, cost-effectiveness. However, the technology and industrialization of AZMBs are greatly plagued by issues of Zn anode such as persistent dendrites and parasitic side reactions, resulting in rapid capacity degradation or battery failure. Electrochemically or chemically in-situ interfacial protection layers have very good self-adaption features for stability and reversibility of Zn anodes, which can also be well matched to current battery manufacturing. However, the in-situ interfacial strategies are far from the practical design for effective Zn anodes. Therefore, a targeted academic discussion that serves the development of this field is very urgent. Herein, the comprehensive insights on electrochemically and chemically in-situ interfacial protection layers for Zn anode were proposed in this review. It showcased a systematic summary of research advances, followed by detailed discussions on electrochemically and chemically in-situ interfacial protection strategies. More importantly, several crucial issues facing in-situ interfacial protection strategies have been further put forward. The final section particularly highlighted a systematic and rigorous scheme for precise designing highly stable and reversible in-situ interface for practical zinc anodes.
水系锌金属电池(AZMBs)因其低毒性、安全性和成本效益,在大规模可持续储能领域受到广泛关注。然而,AZMBs的技术和产业化受到锌负极问题的严重困扰,如持续的枝晶生长和寄生副反应,导致电池容量迅速下降或失效。电化学或化学原位界面保护层对锌负极的稳定性和可逆性具有很好的自适应特性,也能与当前的电池制造工艺良好匹配。然而,原位界面策略距离有效的锌负极实际设计还相差甚远。因此,开展针对该领域发展的学术讨论迫在眉睫。在此,本综述提出了对锌负极电化学和化学原位界面保护层的全面见解。它展示了对研究进展的系统总结,随后详细讨论了电化学和化学原位界面保护策略。更重要的是,进一步提出了原位界面保护策略面临的几个关键问题。最后一部分特别强调了一个系统且严谨的方案,用于精确设计适用于实际锌负极的高度稳定且可逆的原位界面。