Wang Ronghao, Sun Kaiwen, Zhang Yuhao, Li Bingqin, Qian Chengfei, Li Jingfa, Liu Fangyang, Bao Weizhai
School of Chemistry and Materials Science, Nanjing University of Information Science & Technology, Nanjing 210044, China.
Australian Centre for Advanced Photovoltaics, School of Photovoltaic and Renewable Energy Engineering, University of New South Wales, Sydney 2052, Australia.
J Colloid Interface Sci. 2022 Sep;621:41-66. doi: 10.1016/j.jcis.2022.04.075. Epub 2022 Apr 15.
All-solid-state metal batteries (ASSMBs) have been regarded as the ideal candidate for the next-generation high-energy storage system due to their ultrahigh specific capacity and the lowest redox potential. However, the uncontrollable chemical reactivity during cycling which directly determines the growth behaviour of metal dendrites, the low coulombic efficiency and the safety concerns severely limit their real-world applications.. Crystallographic optimization based on solid-state electrolytes (SSEs) provides an atomic-scale and fundamental solution for the inhibition of dendrite growth in metal anodes, which has attracted widespread attentions. From this perspective, we summarize the recent advance of the crystallographic optimization for various classes of solid-state electrolytes. We highlight the recent experimental findings of crystallographic optimization for a new generation of all-solid-state batteries, including lithium-ion batteries, sodium-ion batteries, magnesium-ion batteries, with the aim of providing a deeper understanding of the crystallographic reactions in ASSMBs. The challenges and prospects for the future design and engineering of crystallographic optimization of SSEs are discussed, providing ideas for further research into crystallographic optimization to improve the performance of rechargeable batteries.
全固态金属电池(ASSMBs)因其超高的比容量和最低的氧化还原电位,被视为下一代高能量存储系统的理想候选者。然而,循环过程中不可控的化学反应直接决定了金属枝晶的生长行为,低库仑效率以及安全问题严重限制了它们在实际中的应用。基于固态电解质(SSEs)的晶体学优化为抑制金属阳极中枝晶生长提供了原子尺度的基本解决方案,这引起了广泛关注。从这个角度出发,我们总结了各类固态电解质晶体学优化的最新进展。我们重点介绍了新一代全固态电池(包括锂离子电池、钠离子电池、镁离子电池)晶体学优化的最新实验结果,目的是更深入地了解全固态金属电池中的晶体学反应。讨论了固态电解质晶体学优化未来设计和工程面临的挑战与前景,为进一步研究晶体学优化以提高可充电电池性能提供思路。