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    废旧锂离子电池负极石墨的修复再生与功能化利用进展

    Advances in Recycling and Functionalization of Graphite from Spent Lithium-Ion Battery Anodes

    • 摘要: 随着新能源汽车产业的快速发展,退役锂离子电池数量急剧增加,石墨作为负极核心材料,其高效回收与高值化再利用已成为实现锂离子电池产业可持续发展的关键环节。系统综述了废旧锂离子电池石墨负极的修复再生与功能化利用方面的研究进展。在修复再生方面,重点介绍了中低温石墨化、表面处理及快速热处理等技术,通过去除杂质、修复结构缺陷和优化表面形貌,恢复石墨电化学性能,使其可重新用于锂离子电池负极。在功能化利用方面,废旧石墨被转化为催化材料、吸附材料和储能材料等高附加值产品,应用于电催化、污染物降解及超级电容器等领域,显著提升了废旧石墨资源的高值利用率和经济效益。尽管现有修复再生和功能化利用技术已取得显著进展,但仍面临过程能耗高、工艺流程长等挑战。未来应推动智能化、通用化回收技术的发展,构建闭环与非闭环协同的回收体系,以实现废旧石墨的高效、绿色、高值化再利用。

       

      Abstract: With the rapid expansion of the electric vehicle industry, the volume of spent lithium-ion batteries (LIBs) has witnessed a sharp increase, underscoring the significance of recycling and reutilizing spent graphite anodes for sustainable development. Although spent graphite retains a relatively stable layered framework after cycling, it exhibits structural defects, residual electrolyte components, and surface contaminants. These issues limit its direct reuse in new batteries but create opportunities for targeted regeneration and functional transformation. This review provides a comprehensive overview of recent advances in the repair, regeneration, and functional utilization of graphite anodes from spent LIBs. Repair and regeneration aim to restore the electrochemical activity of degraded graphite by removing impurities, repairing structural defects, and reconstructing the electrode-electrolyte interface. Low-to-medium-temperature graphitization, enabled by the introduction of transition metal catalysts that reduce the migration energy barrier of carbon atoms, allows the graphitization process to occur at lower temperatures and with reduced energy consumption. Surface treatments focus on constructing protective coatings on damaged graphite to cover defect regions, improve structural integrity, and stabilize the electrode-electrolyte interface, thereby suppressing undesired side reactions. Rapid heating treatments, such as microwave irradiation and Joule heating, generate localized high temperatures within seconds, enabling efficient removal of surface residues and repair of near-surface defects in an energy-saving and environmentally friendly manner. Functional utilization leverages the intrinsic defects, porous structures, and the ability of spent graphite to incorporate heteroatoms or metals. By tailoring surface morphology and introducing functional elements, spent graphite can be converted into advanced functional materials for diverse applications. Specifically, defect sites and residual heteroatoms can serve as catalytic centers for electrocatalysis and pollutant degradation, while the engineered porous structures and surface functional groups enhance the adsorption of heavy metals and organic contaminants in aqueous environments. Furthermore, strategies such as defect engineering, heteroatom doping, and composite formation enhance ionic transport and capacitive performance, facilitating the development of porous carbons, doped graphene, and graphite-based composites for supercapacitors as well as sodium-ion and potassium-ion batteries. From an environmental and economic perspective, graphite regeneration and utilization provide distinct advantages over conventional recycling methods. Repair and regeneration reduce greenhouse gas emissions and minimize secondary pollution, while functional utilization mitigates waste and generates economic value by producing functional materials with ecological benefits. Despite notable progress, large-scale recycling of spent graphite remains challenging due to high energy consumption, complex processing steps, and the limited availability of efficient, scalable technologies. In addition, the diversity of waste sources complicates the establishment of standardized pretreatment and regeneration procedures. Future research should focus on developing intelligent and universal recycling technologies, along with the construction of integrated closed- and open-loop pathways, to achieve resource-efficient, environmentally compatible, and value-added reutilization of spent graphite. The coordinated implementation of these strategies is expected to enhance efficiency, reduce costs, and maximize the resource potential of spent graphite, thereby supporting a sustainable and circular lithium-ion battery industry.

       

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