废石墨用于可持续锂离子电池的再利用和升级利用:进展与展望

IF 42.9 Q1 ELECTROCHEMISTRY
Xueqian Li , Chenglong Deng , Mengyao Liu , Jiawei Xiong , Xiaodong Zhang , Qiaoyi Yan , Jiao Lin , Cen Chen , Feng Wu , Yi Zhao , Renjie Chen , Li Li
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引用次数: 0

摘要

在可持续锂离子电池的发展中,实现所有组件,特别是废石墨(SG)阳极的高效和经济回收已成为一项关键要求。虽然在常规条件下对SG材料的回收和再利用作出了相当大的努力,但对极端条件下的回收利用却很少注意。本文系统地阐述了石墨阳极的主要失效机制,包括镀锂和枝晶形成、固体电解质界面膜失效、结构退化和集流器腐蚀,并特别关注了低温和快速充电条件。为了优化资源利用,本文综述了SG阳极回收利用的工业前景,旨在生产高纯度再生石墨(RG)粉末。分析了目前改性RG的方法,如结构改造和表面修复,为改性RG材料带来附加值。详细分析了SG回收和RG升级的技术挑战,为石墨升级回收技术的未来发展提供了指导。为实现石墨的高效、智能化和可持续性利用提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Reutilization and upcycling of spent graphite for sustainable lithium-ion batteries: Progress and perspectives

Reutilization and upcycling of spent graphite for sustainable lithium-ion batteries: Progress and perspectives
In the development of sustainable lithium-ion batteries, achieving the efficient and cost-effective recycling of all components, particularly spent graphite (SG) anodes, has become a critical requirement. While considerable efforts have been devoted to recovering and reusing SG materials under conventional conditions, limited attention has been given to recycling under extreme conditions. This review systematically elucidates the main failure mechanisms of graphite anodes, including lithium plating and dendrite formation, solid electrolyte interface film failure, structural degradation, and current collector corrosion, with a particular focus on low-temperature and fast-charging conditions. As a contribution toward optimizing resource utilization, this review comprehensively summarizes the industrial perspective on strategies for recycling SG anodes, which aim to produce high-purity regenerated graphite (RG) powders. We also analyze current methods for modifying RG, such as structural reconstruction and surface reconditioning, to bring added value to modified RG materials. A detailed examination of the technical challenges in SG recycling and RG upgrading is presented, offering guidance for the future development of graphite upcycling technologies. This review also provides valuable insights into achieving high efficiency, intelligence, and sustainability in graphite utilization.
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CiteScore
33.70
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