Zheng Songhe, Zhao Wanyu, Chen Jianping, Zhao Xiaoli, Pan Zhenghui, Yang Xiaowei
School of Materials Science and Engineering, Tongji University, Shanghai, 201804, People's Republic of China.
School of Chemistry and Chemical Engineering, Shanghai Jiao Tong University, Shanghai, 200240, People's Republic of China.
Nanomicro Lett. 2023 Feb 8;15(1):46. doi: 10.1007/s40820-023-01021-9.
Aqueous zinc-ion battery (ZIB) featuring with high safety, low cost, environmentally friendly, and high energy density is one of the most promising systems for large-scale energy storage application. Despite extensive research progress made in developing high-performance cathodes, the Zn anode issues, such as Zn dendrites, corrosion, and hydrogen evolution, have been observed to shorten ZIB's lifespan seriously, thus restricting their practical application. Engineering advanced Zn anodes based on two-dimensional (2D) materials are widely investigated to address these issues. With atomic thickness, 2D materials possess ultrahigh specific surface area, much exposed active sites, superior mechanical strength and flexibility, and unique electrical properties, which confirm to be a promising alternative anode material for ZIBs. This review aims to boost rational design strategies of 2D materials for practical application of ZIB by combining the fundamental principle and research progress. Firstly, the fundamental principles of 2D materials against the drawbacks of Zn anode are introduced. Then, the designed strategies of several typical 2D materials for stable Zn anodes are comprehensively summarized. Finally, perspectives on the future development of advanced Zn anodes by taking advantage of these unique properties of 2D materials are proposed.
水系锌离子电池(ZIB)具有高安全性、低成本、环境友好和高能量密度等特点,是大规模储能应用中最具前景的体系之一。尽管在开发高性能阴极方面取得了广泛的研究进展,但锌阳极问题,如锌枝晶、腐蚀和析氢等,已被观察到严重缩短了水系锌离子电池的寿命,从而限制了它们的实际应用。基于二维(2D)材料设计先进的锌阳极已被广泛研究以解决这些问题。二维材料具有原子厚度,拥有超高的比表面积、大量暴露的活性位点、优异的机械强度和柔韧性以及独特的电学性质,这证实其是水系锌离子电池一种很有前景的替代阳极材料。本综述旨在通过结合基本原理和研究进展,推动二维材料在水系锌离子电池实际应用中的合理设计策略。首先,介绍了二维材料针对锌阳极缺点的基本原理。然后,全面总结了几种典型二维材料用于稳定锌阳极的设计策略。最后,提出了利用二维材料这些独特性质对先进锌阳极未来发展的展望。