Zhang Jun, Han Junwei, Yun Qinbai, Li Qi, Long Yu, Ling Guowei, Zhang Chen, Yang Quan-Hong
Nanoyang Group State Key Laboratory of Chemical Engineering School of Chemical Engineering and Technology Tianjin University/Collaborative Innovation Center of Chemical Science and Engineering Tianjin 300350 China.
Joint School of National University of Singapore Tianjin University, International Campus of Tianjin University Binhai New City Fuzhou 350207 China.
Small Sci. 2021 Feb 2;1(3):2000063. doi: 10.1002/smsc.202000063. eCollection 2021 Mar.
Carbon materials have great potential for being the anode of choice in alkali metal ion batteries and are also crucial for constructing an efficient spatial framework for the production of alloy anodes with higher capacities. For the design of practical carbon anodes, the criteria of sufficient charge storage, a high initial coulombic efficiency, and excellent stability are proposed, which calls for the selection and optimization of the carbon microstructure as well as the matching of electrolytes. For the design of the carbon framework for alloy anodes, the principles of interfacial cohesion, spatial interconnection, and structural stability are proposed, thus recommending a proactive design strategy for better stability and volumetric performance. Research history together with representative research progress is reviewed and discussed in detail in an attempt to stimulate more research interest and promote ideas for the critical search for the right carbon to use as an anode in alkali metal ion batteries. Lastly, specific bottlenecks restricting the successful transfer of these carbons from laboratory to industry are highlighted. The importance of a precise understanding of the charge storage mechanism, the development of matching electrolytes, and the ability to produce the necessary carbon framework in large quantity for higher capacity alloy anodes are discussed.
碳材料在碱金属离子电池中作为首选负极具有巨大潜力,对于构建用于生产更高容量合金负极的高效空间框架也至关重要。对于实用碳负极的设计,提出了充足电荷存储、高初始库仑效率和优异稳定性的标准,这需要选择和优化碳微观结构以及匹配电解质。对于合金负极的碳框架设计,提出了界面凝聚力、空间互连和结构稳定性的原则,从而推荐一种积极的设计策略以实现更好的稳定性和体积性能。回顾并详细讨论了研究历史以及代表性研究进展,旨在激发更多研究兴趣,并推动寻找适用于碱金属离子电池负极的合适碳材料的关键思路。最后,强调了限制这些碳材料从实验室成功转移到工业应用的具体瓶颈。讨论了精确理解电荷存储机制、开发匹配电解质以及大量生产用于更高容量合金负极的必要碳框架的能力的重要性。