Li Feifei, Cao Yangyang, Wu Wenjing, Wang Gongwei, Qu Deyang
School of Materials Science and Engineering, Hubei Key Laboratory of Plasma Chemistry and Advanced Materials, Wuhan Institute of Technology, Wuhan, 430205, China.
College of Chemistry and Molecular Sciences, Hubei Key Lab of Electrochemical Power Sources, Wuhan University, Wuhan, 430072, China.
Small Methods. 2022 Jul;6(7):e2200411. doi: 10.1002/smtd.202200411. Epub 2022 Jun 9.
The ever-growing market of portable electronics and electric vehicles has spurred extensive research for advanced lithium-ion batteries (LIBs) with high energy density. High-capacity alloy- and conversion-type anodes are explored to replace the conventional graphite anode. However, one common issue plaguing these anodes is the large initial capacity loss caused by the solid electrolyte interface formation and other irreversible parasitic reactions, which decrease the total energy density and prevent further market integration. Prelithiation becomes indispensable to compensate for the initial capacity loss, enhance the full cell cycling performance, and bridge the gap between laboratory studies and the practical requirements of advanced LIBs. This review summarizes the various emerging anode and cathode prelithiation techniques, the key barriers, and the corresponding strategies for manufacturing-compatible and scalable prelithiation. Furthermore, prelithiation as the primary Li donor enables the safe assembly of new-configured "beyond LIBs" (e.g., Li-ion/S and Li-ion/O batteries) and high power-density Li-ion capacitors (LICs). The related progress is also summarized. Finally, perspectives are suggested on the future trend of prelithiation techniques to propel the commercialization of advanced LIBs/LICs.
便携式电子产品和电动汽车市场的不断增长,促使人们对高能量密度的先进锂离子电池(LIB)进行广泛研究。人们探索使用高容量合金型和转换型负极来取代传统的石墨负极。然而,困扰这些负极的一个常见问题是,由固体电解质界面形成和其他不可逆寄生反应导致的大量初始容量损失,这降低了总能量密度,并阻碍了其进一步融入市场。预锂化对于补偿初始容量损失、提高全电池循环性能以及弥合实验室研究与先进LIB实际需求之间的差距变得不可或缺。本文综述了各种新兴的负极和正极预锂化技术、关键障碍以及实现与制造兼容且可扩展预锂化的相应策略。此外,预锂化作为主要的锂供体,能够安全组装新型“超越LIB”(例如锂离子/硫和锂离子/氧电池)以及高功率密度锂离子电容器(LIC)。文中还总结了相关进展。最后,对预锂化技术的未来趋势提出了展望,以推动先进LIB/LIC的商业化。