Bai Mengxi, Chen Jingtao, Li Qiufen, Wang Xiang, Li Jiashuai, Lin Xiaoyan, Shao Siyuan, Li Dongze, Wang Ziqi
Department of Materials Science and Engineering, College of Chemistry and Materials Science, Jinan University, Guangzhou, 511443, P. R. China.
Small. 2024 Oct;20(42):e2403380. doi: 10.1002/smll.202403380. Epub 2024 Jun 5.
Zinc metal is a promising anode candidate for aqueous zinc ion batteries due to its high theoretical capacity, low cost, and high safety. However, its application is currently restricted by hydrogen evolution reactions (HER), by-product formation, and Zn dendrite growth. Herein, a "Zn in salt" (ZIS) interphase is in situ constructed on the surface of the anode (ZIS@Zn). Unlike the conventional "Zn in water" working environment of Zn anodes, the intrinsic hydrophobicity of the ZIS interphase isolates the anode from direct contact with the aqueous electrolyte, thereby protecting it from HER, and the accompanying side reactions. More importantly, it works as an ordered water-free ion-conducting medium, which guides uniform Zn deposition and facilitates rapid Zn migration at the interface. As a result, the symmetric cells assembled with ZIS@Zn exhibit dendrite-free plating/striping at 4500 h and a high critical current of 14 mA cm. When matched with a vanadium-based (NVO) cathode, the full battery exhibits excellent long-term cycling stability, with 88% capacity retention after 1600 cycles. This work provides an effective strategy to promote the stability and reversibility of Zn anodes in aqueous electrolytes.
金属锌因其高理论容量、低成本和高安全性,是水系锌离子电池阳极的理想候选材料。然而,目前其应用受到析氢反应(HER)、副产物形成和锌枝晶生长的限制。在此,在阳极表面原位构建了一种“盐包锌”(ZIS)界面相(ZIS@Zn)。与传统锌阳极的“水中锌”工作环境不同,ZIS界面相的固有疏水性使阳极与水性电解质直接接触隔离开来,从而保护其免受析氢反应及伴随的副反应影响。更重要的是,它作为一种有序的无水离子传导介质,引导锌均匀沉积并促进界面处锌的快速迁移。结果,采用ZIS@Zn组装的对称电池在4500小时内表现出无枝晶的电镀/脱镀,临界电流高达14 mA cm。当与钒基(NVO)阴极匹配时,全电池表现出优异的长期循环稳定性,在1600次循环后容量保持率为88%。这项工作为提高水系电解质中锌阳极的稳定性和可逆性提供了一种有效策略。