材料科学
返老还童
接口(物质)
电池(电)
动力学
热力学
复合材料
功率(物理)
老年学
医学
物理
毛细管数
量子力学
毛细管作用
作者
Hao Zhang,Yaduo Song,Jiale Zhao,Zhiheng Cheng,Jinming Guo,Minglei Cao,Haijun Yu,Li Wang,Long Qie,Lixia Yuan,Yonggang Yao,Yunhui Huang
标识
DOI:10.1002/aenm.202404838
摘要
Abstract The ambitious pursuit of carbon neutrality underscores the pressing demand for closed‐loop recycling of lithium‐ion batteries (LIBs), amid escalating production and disposal challenges. Direct battery material recycling, emphasizing the rejuvenation of degraded materials, stands out as an environmentally benign alternative to conventional pyro‐ and hydro‐metallurgical processes that are intrinsically destructive. In addition, given the surface, interface, and interphase as the major failure mechanisms in degraded materials, rapid heating technology (RHT) emerges as a promising direct recycling method, harnessing its distinctive kinetics and thermodynamics to trigger highly time‐ and energy‐efficient, precisely defect‐ and interface‐targeted approach to revitalize degraded materials. This review summarizes recent advancements in RHT‐based LIB recycling strategies, focusing on active materials recovery, efficient regeneration, and reutilization, with emphasis on expedited kinetics and locally confined chemical reactions at interfaces. It also outlines the perspectives and future directions by emphasizing the need for re‐manufactured materials to meet increasing application demands. This comprehensive review aims to guide the recycling and upcycling of spent LIBs toward a green and sustainable battery economy.
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