阴极
阳极
钥匙(锁)
电池(电)
能量密度
锂(药物)
储能
纳米技术
金属锂
锂钴氧化物
氧化物
工艺工程
材料科学
锂电池
功率密度
计算机科学
小袋
自放电
比能量
能量(信号处理)
工程物理
石墨
电流密度
机械工程
氧化钴
耐久性
有机自由基电池
固体氧化物燃料电池
钾离子电池
作者
Chengrong Xu,Bo Peng,Wujie Yang,Jiaming Tian,Haoshen Zhou
摘要
are far from this goal. Promisingly, the lithium metal batteries (LMBs) matched with a variety of cathode materials have great potential to achieve ultra-high-energy-densities in practice. Nevertheless, the energy density of LMBs depends greatly on the energy density of different types of cathodes. Therefore, research on how to improve the output energy density and durability of various cathode materials under practical working conditions is essential for realizing the ultra-high-energy-density LMBs. In this review, we systematically explore the pathway to achieving high-energy and durable LMBs from the perspective of key cathode materials to pouch cell configuration design. We discuss the fundamental characteristics and key challenges of five promising cathode materials, including a lithium cobalt oxide cathode, a high-nickel oxide cathode, a Li-rich oxide cathode, a sulfur cathode, and an oxygen cathode, and also summarize the feasible solutions and recent progress in addressing the key bottlenecks. Furthermore, using pouch cell configurations as a typical pattern, we precisely summarize the impact of each component in pouch cells on energy density and provide detailed routes for acquiring the maximum practical energy density by using different cathode materials in pouch cells. This review offers guidelines for promoting the practical applications of high-energy-density LMBs.
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