Li Chengfeng, Ni Chaotian, Huang Xiang-Long, Yao Long, Yang Linyu, Zhang Lei, Zhu Kunjie, Liu Hua-Kun, Wang Yun-Xiao
Institute of Energy Materials Science (IEMS), University of Shanghai for Science and Technology, Shanghai 200093, P. R. China.
Xinjiang Key Laboratory of Solid State Physics and Devices, Xinjiang University, Urumqi 830046, China.
Chem Commun (Camb). 2025 Jul 15;61(58):10643-10667. doi: 10.1039/d5cc02302e.
Although lithium-ion batteries have achieved widespread commercial success, they are not suitable for large-scale energy applications due to limited lithium resources and relatively high cost. In this context, aqueous zinc-ion batteries (AZIBs) have emerged as promising alternatives, offering advantages such as cost-effectiveness, superior safety and a simplified manufacturing process. Nevertheless, AZIBs currently face a series of critical challenges, including uncontrolled dendrite growth, low zinc utilization efficiency and notorious side reactions. To address these concerns, extensive research efforts have been made to develop innovative electrolyte formulation strategies, with a strong emphasis on electrolyte additives owing to simplicity, adaptability and exceptional versatility. This review provides a comprehensive and systematic analysis of recent advancements in electrolyte additive engineering for AZIBs, highlighting their immense potential in addressing key challenges and offering critical insights into regulation mechanisms, practical applications and future directions for advancing performance and sustainability. Furthermore, an in-depth comprehensive and systematic summary of the latest advancements is provided in detail. Overall, this review aims to inspire innovative research and accelerate AZIBs development for next-generation energy storage applications.
尽管锂离子电池已取得广泛的商业成功,但由于锂资源有限且成本相对较高,它们并不适合大规模能源应用。在此背景下,水系锌离子电池(AZIBs)作为有前景的替代方案应运而生,具有成本效益高、安全性卓越和制造工艺简化等优点。然而,AZIBs目前面临一系列关键挑战,包括枝晶生长失控、锌利用效率低以及严重的副反应。为解决这些问题,人们已进行了大量研究工作来开发创新的电解质配方策略,由于其简单性、适应性和卓越的多功能性,电解质添加剂受到了高度重视。本综述对AZIBs电解质添加剂工程的最新进展进行了全面系统的分析,突出了它们在应对关键挑战方面的巨大潜力,并对调节机制、实际应用以及提高性能和可持续性的未来方向提供了关键见解。此外,还详细深入地全面系统总结了最新进展。总体而言,本综述旨在激发创新研究并加速AZIBs在下一代储能应用中的发展。