Wang Zhuo, Pan Fei, Zhao Qi, Lv Menglan, Zhang Bin
School of Chemistry and Chemical Engineering, Guizhou University, Guiyang, China.
School of Chemical Engineering, Guizhou Institute of Technology, Guiyang, China.
Front Chem. 2022 Oct 21;10:1055649. doi: 10.3389/fchem.2022.1055649. eCollection 2022.
Recently, how to enhance the energy density of rechargeable batteries dramatically is becoming a driving force in the field of energy storage research. Among the current energy storage technologies, the lithium-sulfur (Li-S) batteries are one of the most promising candidates for achieving high-capacity and commercial batteries. The theoretical energy density of Li-S batteries reaches to 2,600 Wh kg with the theoretical capacity of 1,675 mA h g. Therefore, Li-S batteries are considered as the great potential for developing future energy storage technology. However, some of problems such as Li dendrites growth, the shuttle effect of sulfides and the electronic insulation feature of sulfur, have brought obstacles to the development of Li-S batteries. The covalent organic frameworks (COFs) are a series of porous materials with different topological structures, which show the versatile characteristics of high specific surface area, permanent pores, ordered porous channels and tunable internal structure. Potentially, their ordered channels and extended conjugated frameworks could facilitate rapid Li-ion diffusion and electron transport for the remarkable rate capability. On the basis of these merits, the COFs become the potential electrode materials to solve the above serious problems of Li-S batteries. In this mini review, we summarize the research progress of COFs utilized as electrode materials in the Li-S batteries, including the cathode, separator and anode materials. Accordingly, the outlook of COFs as electrodes for future development in Li-S batteries is also given.
近年来,如何大幅提高可充电电池的能量密度已成为储能研究领域的一股驱动力。在当前的储能技术中,锂硫(Li-S)电池是实现高容量商用电池最具潜力的候选者之一。Li-S电池的理论能量密度达到2600 Wh/kg,理论容量为1675 mA h/g。因此,Li-S电池被认为在未来储能技术发展方面具有巨大潜力。然而,诸如锂枝晶生长、硫化物的穿梭效应以及硫的电子绝缘特性等一些问题给Li-S电池的发展带来了障碍。共价有机框架(COFs)是一系列具有不同拓扑结构的多孔材料,具有高比表面积、永久孔隙、有序多孔通道和可调节内部结构等多种特性。其有序通道和扩展共轭框架可能有助于锂离子快速扩散和电子传输,从而具有出色的倍率性能。基于这些优点,COFs成为解决Li-S电池上述严重问题的潜在电极材料。在这篇综述中,我们总结了COFs作为Li-S电池电极材料的研究进展,包括阴极、隔膜和阳极材料。相应地,也给出了COFs作为Li-S电池未来电极发展的展望。