Yang Qi, Li Qing, Liu Zhuoxin, Wang Donghong, Guo Ying, Li Xinliang, Tang Yongchao, Li Hongfei, Dong Binbin, Zhi Chunyi
Department of Materials Science and Engineering, City University of Hong Kong, 83 Tat Chee Avenue, Hong Kong SAR, 999077, China.
Songshan Lake Materials Laboratory, Dongguan, 523808, China.
Adv Mater. 2020 Dec;32(48):e2001854. doi: 10.1002/adma.202001854. Epub 2020 Oct 26.
Aqueous Zn batteries that provide a synergistic integration of absolute safety and high energy density have been considered as highly promising energy-storage systems for powering electronics. Despite the rapid progress made in developing high-performance cathodes and electrolytes, the underestimated but non-negligible dendrites of Zn anode have been observed to shorten battery lifespan. Herein, this dendrite issue in Zn anodes, with regard to fundamentals, protection strategies, characterization techniques, and theoretical simulations, is systematically discussed. An overall comparison between the Zn dendrite and its Li and Al counterparts, to highlight their differences in both origin and topology, is given. Subsequently, in-depth clarifications of the specific influence factors of Zn dendrites, including the accumulation effect and the cathode loading mass (a distinct factor for laboratory studies and practical applications) are presented. Recent advances in Zn dendrite protection are then comprehensively summarized and categorized to generate an overview of respective superiorities and limitations of various strategies. Accordingly, theoretical computations and advanced characterization approaches are introduced as mechanism guidelines and measurement criteria for dendrite suppression, respectively. The concluding section emphasizes future challenges in addressing the Zn dendrite issue and potential approaches to further promoting the lifespan of Zn batteries.
能够将绝对安全性和高能量密度协同整合的水系锌电池,被视为为电子设备供电的极具前景的储能系统。尽管在开发高性能阴极和电解质方面取得了快速进展,但已观察到锌阳极中被低估但不可忽视的枝晶会缩短电池寿命。在此,本文从基本原理、保护策略、表征技术和理论模拟等方面,系统地讨论了锌阳极中的枝晶问题。对锌枝晶与其锂和铝对应物进行了全面比较,以突出它们在起源和拓扑结构上的差异。随后,深入阐明了锌枝晶的具体影响因素,包括积累效应和阴极负载质量(这是实验室研究和实际应用中的一个独特因素)。接着全面总结并分类了锌枝晶保护方面的最新进展,以概述各种策略各自的优势和局限性。相应地,分别引入理论计算和先进表征方法作为抑制枝晶的机理指导和测量标准。结论部分强调了解决锌枝晶问题的未来挑战以及进一步提高锌电池寿命的潜在方法。