"酸+氧化剂 "处理可从废 NCM523 正极中选择性提取锂

IF 4.6 4区 化学 Q2 ELECTROCHEMISTRY Batteries Pub Date : 2024-05-24 DOI:10.3390/batteries10060179
Hui Wang, Zejia Wu, Mengmeng Wang, Ya-Jun Cheng, Jie Gao, Yonggao Xia
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引用次数: 0

摘要

随着新能源汽车和储能产业的快速发展,锂离子电池的需求量激增,废旧锂离子电池的数量也随之增加。因此,提出了一种从废锂离子电池正极材料中选择性提取锂的新方法,旨在更高效地回收有价金属。针对废三元正极材料,提出了酸+氧化剂浸出体系,可实现锂的选择性高效提取。本研究采用 0.1 mol L-1 H2SO4 和 0.2 mol L-1 (NH4)2S2O8 作为浸出酸和氧化剂。锂、镍、钴和锰的浸出效率分别为 98.7%、30%、3.5% 和 0.1%。通过调节溶液的 pH 值获得了锂溶液。锂浸出过程的热力学和动力学研究表明,锂浸出过程的表观活化能为 46 kJ mol-1,速率步骤为化学反应过程。浸出残渣可用作三元前驱体,通过固相烧结制备再生正极材料。对再生材料进行的电化学测试证明,该材料具有良好的电化学性能。在 0.2 C 条件下,最高放电容量超过 150 mAh g-1,循环 100 次后容量保持率超过 90%。所提出的新方法可以高选择性、高效率地从三元材料中提取锂,减少了锂在漫长过程中的损耗。对脱锂材料进行补锂还能恢复其活性,实现镍、钴、锰等元素的综合利用。该方法将锂回收工艺与材料制备工艺相结合,简化了工艺流程,节约了成本,为今后的方法开发提供了新思路。
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“Acid + Oxidant” Treatment Enables Selective Extraction of Lithium from Spent NCM523 Positive Electrode
With the rapid development of new energy vehicles and energy storage industries, the demand for lithium-ion batteries has surged, and the number of spent LIBs has also increased. Therefore, a new method for lithium selective extraction from spent lithium-ion battery cathode materials is proposed, aiming at more efficient recovery of valuable metals. The acid + oxidant leaching system was proposed for spent ternary positive electrode materials, which can achieve the selective and efficient extraction of lithium. In this study, 0.1 mol L−1 H2SO4 and 0.2 mol L−1 (NH4)2S2O8 were used as leaching acid and oxidant. The leaching efficiencies of Li, Ni, Co, and Mn were 98.7, 30, 3.5, and 0.1%, respectively. The lithium solution was obtained by adjusting the pH of the solution. Thermodynamic and kinetic studies of the lithium leaching process revealed that the apparent activation energy of the lithium leaching process is 46 kJ mol−1 and the rate step is the chemical reaction process. The leaching residue can be used as a ternary precursor to prepare regenerated positive electrode materials by solid-phase sintering. Electrochemical tests of the regenerated material proved that the material has good electrochemical properties. The highest discharge capacity exceeds 150 mAh g−1 at 0.2 C, and the capacity retention rate after 100 cycles exceeds 90%. The proposed new method can extract lithium from the ternary material with high selectivity and high efficiency, reducing its loss in the lengthy process. Lithium replenishment of the delithiation material can also restore its activity and realize the comprehensive utilization of elements such as nickel, cobalt, and manganese. The method combines the lithium recovery process and the material preparation process, simplifying the process and saving costs, thus providing new ideas for future method development.
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来源期刊
Batteries
Batteries Energy-Energy Engineering and Power Technology
CiteScore
4.00
自引率
15.00%
发文量
217
审稿时长
7 weeks
期刊最新文献
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