Yang Chenyu, Jiang Zhan, Chen Xiangyue, Luo Wei, Zhou Tengfei, Yang Jianping
Institutes of Physical Science and Information Technology, Key Laboratory of Structure and Functional Regulation of Hybrid Material (Ministry of Education), Anhui University, Hefei 230601, China.
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, China.
Chem Commun (Camb). 2024 Sep 16;60(75):10245-10264. doi: 10.1039/d4cc03177f.
As industries and consumption patterns evolve, new electrical appliances are increasingly playing critical roles in national production, defense, and cognitive exploration. However, the slow development of energy storage devices with ultra-high energy density (beyond 500 W h kg) has impeded the promotion and widespread application of the next generation of intelligent, multi-scenario electrical equipment. Among the numerous ultra-high specific energy battery systems, lithium metal batteries (LMBs) hold significant potential for applications in advanced and sophisticated fields. This potential is primarily due to lithium metal's high specific capacity (3860 mA h g). However, LMBs face numerous challenges, including the growth of lithium dendrites, poor cycle stability, and safety concerns. In recent years, research on the mechanisms of Li metal-based battery systems, innovation in electrode materials, and optimization of device configurations have made significant progress. In this highlight, we provide a comprehensive overview of the storage mechanisms and the latest advancements in high-energy-density LMBs, represented by systems such as Li-LiMO, Li-S/Se, Li-gas (CO/air/O), Li-CF, and all-solid-state LMBs. By integrating the current research findings, we highlight the opportunities and future research directions for high-energy-density LMBs, offering new guiding perspectives for their development under practical conditions.
随着工业和消费模式的演变,新型电器在国家生产、国防和认知探索中发挥着越来越关键的作用。然而,超高能量密度(超过500 W h kg)储能装置的缓慢发展阻碍了下一代智能、多场景电气设备的推广和广泛应用。在众多超高比能电池系统中,锂金属电池(LMB)在先进和复杂领域的应用具有巨大潜力。这种潜力主要源于锂金属的高比容量(3860 mA h g)。然而,LMB面临着诸多挑战,包括锂枝晶生长、循环稳定性差和安全问题。近年来,基于锂金属的电池系统机理研究、电极材料创新和器件配置优化取得了显著进展。在本综述中,我们全面概述了以Li-LiMO、Li-S/Se、Li-气体(CO/空气/O)、Li-CF和全固态LMB等系统为代表的高能量密度LMB的存储机制和最新进展。通过整合当前的研究成果,我们突出了高能量密度LMB的机遇和未来研究方向,为其在实际条件下的发展提供了新的指导视角。