College of Materials Science and Engineering, Chongqing University, Chongqing 400044, China.
Department of Chemical and Biochemical Engineering, Western University, London, Ontario N6A 5B9, Canada.
Waste Manag. 2023 Jun 15;165:189-198. doi: 10.1016/j.wasman.2023.01.013. Epub 2023 May 5.
A large amount of hazardous spent lithium-ion batteries (LIBs) is produced every year. Recovery of valuable metals from spent LIBs is significant to achieve environmental protection and alleviate resource shortages. In this study, a green and facile process for recovery of valuable metals from spent LIBs by waste copperas was proposed. The effects of heat treatment parameters on recovery efficiency of valuable metals and the redox mechanism were studied systematically through phase transformation behavior and valence transition. At low temperature (≤460 °C), copperas reacted with lithium on the outer layer of LIBs preferentially, but the reduction of transition metals was limited. As the temperature rose to 460-700 °C, the extraction efficiency of valuable metals was greatly enhanced due to the generation of SO, and the gas-solid reaction proceeded much fast than the solid-solid reaction. In the final stage (≥700 °C), the main reactions were the thermal decomposition of soluble sulfates and the combination of decomposed oxides with FeO to form insoluble spinel. Under the optimum roasting conditions, i.e., at a copperas/LIBs mass ratio of 4.5, and a roasting temperature of 650 °C and roasting time of 120 min, the leaching efficiencies of Li, Ni, Co and Mn were 99.94%, 99.2%, 99.5% and 99.65%, respectively. The results showed that valuable metals can be selectively and efficiently extracted from the complex cathode materials by water leaching. This study used waste copperas as an aid to recover metals and provided an alternative technical route for green recycling of spent LIBs.
每年都会产生大量的废旧锂离子电池(LIB)。从废旧 LIB 中回收有价值的金属对于实现环境保护和缓解资源短缺具有重要意义。在本研究中,提出了一种从废旧 LIB 中回收有价值金属的绿色简便工艺,即利用绿矾来回收。通过相变行为和价态转变,系统研究了热处理参数对有价金属回收效率的影响和氧化还原机制。在低温(≤460°C)下,绿矾优先与 LIB 外层的锂发生反应,但过渡金属的还原受到限制。随着温度升高至 460-700°C,由于 SO 的生成,有价金属的提取效率大大提高,气固反应比固固反应快得多。在最后阶段(≥700°C),主要反应是可溶性硫酸盐的热分解以及分解的氧化物与 FeO 结合形成不溶性尖晶石。在最佳焙烧条件下,即绿矾/LIBs 质量比为 4.5、焙烧温度为 650°C、焙烧时间为 120min 时,Li、Ni、Co 和 Mn 的浸出率分别为 99.94%、99.2%、99.5%和 99.65%。结果表明,通过水浸可以从复杂的正极材料中选择性地高效提取有价值的金属。本研究利用废绿矾作为辅助手段来回收金属,为废旧 LIB 的绿色回收提供了一种替代的技术途径。