Gao Jiechang, Xie Yawen, Zeng Pan, Zhang Liang
Institute of Functional Nano and Soft Materials (FUNSOM), Jiangsu Key Laboratory for Carbon-Based Functional Materials and Devices, Soochow University, Suzhou, Jiangsu, 215123, China.
Institute for Advanced Study, Chengdu University, Chengdu, 610106, China.
Small Methods. 2023 Nov;7(11):e2300855. doi: 10.1002/smtd.202300855. Epub 2023 Sep 13.
Aqueous rechargeable Zn-ion batteries (ARZIBs) have attracted extensive attention because of the advantages of high energy density, high safety, and low cost. However, the commercialization of ARZIBs is still challenging, mainly because of the low efficiency of Zn anodes. Several undesirable reactions (e.g., Zn dendrite and byproduct formation) always occur at the Zn anode/electrolyte interfaces, resulting in low Coulombic efficiency and rapid decay of ARZIBs. Motivated by the great interest in addressing these issues, various optimization strategies and related mechanisms have been proposed to stabilize the Zn anode-electrolyte interfaces and enlengthen the cycling lifespan of ARZIBs. Therefore, considering the rapid development of this field, updating the optimization strategies in a timely manner and understanding their protection mechanisms are highly necessary. This review provides a brief overview of the Zn anode/electrolyte interfaces from the fundamentals and challenges of Zn anode chemistry to related optimization strategies and perspectives. Specifically, these strategies are systematically summarized and classified, while several representative works are presented to illustrate the effect and corresponding mechanism in detail. Finally, future challenges and research directions for the Zn anode/electrolyte interfaces are comprehensively clarified, providing guidelines for accurate evaluation of the interfaces and further fostering the development of ARZIBs.
水系可充电锌离子电池(ARZIBs)因其具有高能量密度、高安全性和低成本等优点而受到广泛关注。然而,ARZIBs的商业化仍面临挑战,主要原因是锌负极效率较低。在锌负极/电解质界面总会发生一些不良反应(例如,锌枝晶和副产物形成),导致ARZIBs的库仑效率较低且快速衰减。出于解决这些问题的强烈兴趣,人们提出了各种优化策略及相关机制,以稳定锌负极-电解质界面并延长ARZIBs的循环寿命。因此,鉴于该领域的快速发展,及时更新优化策略并了解其保护机制非常必要。本综述从锌负极化学的基本原理和挑战到相关优化策略及展望,对锌负极/电解质界面进行了简要概述。具体而言,这些策略被系统地总结和分类,同时展示了一些具有代表性的研究工作以详细说明其效果和相应机制。最后,全面阐明了锌负极/电解质界面未来面临的挑战和研究方向,为准确评估界面以及进一步推动ARZIBs的发展提供了指导。