Nie Wei, Cheng Hongwei, Sun Qiangchao, Liang Shuquan, Lu Xionggang, Lu Bingan, Zhou Jiang
State Key Laboratory of Advanced Special Steel & School of Materials Science and Engineering, Shanghai University, Shanghai, 200444, China.
School of Materials Science and Engineering, Hunan Provincial Key Laboratory of Electronic Packaging and Advanced Functional Materials, Central South University, Changsha, 410083, China.
Small Methods. 2024 Jun;8(6):e2201572. doi: 10.1002/smtd.202201572. Epub 2023 Feb 25.
Rechargeable aqueous Zn-ion batteries (AZIBs) are one of the most promising alternatives for traditional energy-storage devices because of their low cost, abundant resources, environmental friendliness, and inherent safety. However, several detrimental issues with Zn metal anodes including Zn dendrite formation, hydrogen evolution, corrosion and passivation, should be considered when designing advanced AZIBs. Moreover, these thorny issues are not independent but mutually reinforcing, covering many technical and processing parameters. Therefore, it is necessary to comprehensively summarize the issues facing Zn anodes and the corresponding strategies to develop roadmaps for the development of high-performance Zn anodes. Herein, the failure mechanisms of Zn anodes and their corresponding impacts are outlined. Recent progress on improving the stability of Zn anode is summarized, including structurally designed Zn anodes, Zn alloy anodes, surface modification, electrolyte optimization, and separator design. Finally, this review provides brilliant and insightful perspectives for stable Zn metal anodes and promotes the large-scale application of AZIBs in power grid systems.
可充电水系锌离子电池(AZIBs)因其成本低、资源丰富、环境友好和固有安全性,成为传统储能设备最有前景的替代方案之一。然而,在设计先进的AZIBs时,需要考虑锌金属负极存在的几个不利问题,包括锌枝晶形成、析氢、腐蚀和钝化。此外,这些棘手的问题并非相互独立,而是相互强化的,涉及许多技术和工艺参数。因此,有必要全面总结锌负极面临的问题以及相应策略,以制定高性能锌负极的发展路线图。在此,概述了锌负极的失效机制及其相应影响。总结了提高锌负极稳定性的最新进展,包括结构设计的锌负极、锌合金负极、表面改性、电解液优化和隔膜设计。最后,本综述为稳定的锌金属负极提供了卓越而深刻的见解,并推动了AZIBs在电网系统中的大规模应用。