Han Yu, Yan Zichao, Zhang Lei, Zhu Zhiqiang
State Key Laboratory of Chemo/Biosensing and Chemometrics, College of Chemistry and Chemical Engineering, Hunan University, Changsha, 410082, China.
ChemSusChem. 2025 Jan 2;18(1):e202401166. doi: 10.1002/cssc.202401166. Epub 2024 Sep 6.
Aqueous zinc ion batteries (AZIBs) are promising candidates for next-generation energy storage systems due to their low cost, high safety, and environmental friendliness. As the critical component, Zn metal with high theoretical capacity (5855 mAh cm), low redox potential (-0.76 V vs. standard hydrogen electrode), and low cost has been widely applied in AZIBs. However, the low Zn utilization rate (ZUR) of Zn metal anode caused by the dendrite growth, hydrogen evolution, corrosion, and passivation require excess Zn installation in current AZIBs, thus leading to increased unnecessary battery weight and decreased energy density. Herein, approaches to the historical progress toward high ZUR AZIBs through the perspective of electrolyte optimization, anode protection, and substrate construction are comprehensively summarized, and an in-depth understanding of ZUR is highlighted. Specifically, the main challenges and failure mechanisms of Zn anode are analyzed. Then, the persisting issues and promising solutions in the reaction interface, aqueous electrolyte, and Zn anode are emphasized. Finally, the design of 100 % ZUR AZIBs free of Zn metal is presented in detail. This review aims to provide a better understanding and fundamental guidelines on the high ZUR AZIBs design, which can shed light on research directions for realizing high energy density AZIBs.
水系锌离子电池(AZIBs)因其低成本、高安全性和环境友好性,是下一代储能系统的理想候选者。作为关键组件,具有高理论容量(5855 mAh cm)、低氧化还原电位(相对于标准氢电极-0.76 V)和低成本的锌金属已被广泛应用于水系锌离子电池。然而,锌金属阳极的低锌利用率(ZUR)是由枝晶生长、析氢、腐蚀和钝化引起的,这要求在当前的水系锌离子电池中安装过量的锌,从而导致不必要的电池重量增加和能量密度降低。在此,从电解质优化、阳极保护和基底构建的角度,全面总结了实现高锌利用率水系锌离子电池的历史进展方法,并强调了对锌利用率的深入理解。具体而言,分析了锌阳极的主要挑战和失效机制。然后,强调了反应界面、水系电解质和锌阳极中存在的问题和有前景的解决方案。最后,详细介绍了不含锌金属的100%锌利用率水系锌离子电池的设计。本综述旨在更好地理解高锌利用率水系锌离子电池的设计并提供基本指导方针,这可为实现高能量密度水系锌离子电池的研究方向提供启示。