Department of Civil and Environmental Engineering, The Hong Kong Polytechnic University, Kowloon, Hong Kong, China.
Research Centre for Environmental Technology and Management, The Hong Kong Polytechnic University, Kowloon, Hong Kong, China.
Environ Sci Technol. 2023 Mar 7;57(9):3940-3950. doi: 10.1021/acs.est.2c07689. Epub 2023 Feb 17.
Selective and highly efficient extraction technologies for the recovery of critical metals including lithium, nickel, cobalt, and manganese from spent lithium-ion battery (LIB) cathode materials are essential in driving circularity. The tailored deep eutectic solvent (DES) choline chloride-formic acid (ChCl-FA) demonstrated a high selectivity and efficiency in extracting critical metals from mixed cathode materials (LiFePO:Li(NiCoMn)O mass ratio of 1:1) under mild conditions (80 °C, 120 min) with a solid-liquid mass ratio of 1:200. The leaching performance of critical metals could be further enhanced by mechanochemical processing because of particle size reduction, grain refinement, and internal energy storage. Furthermore, mechanochemical reactions effectively inhibited undesirable leaching of nontarget elements (iron and phosphorus), thus promoting the selectivity and leaching efficiency of critical metals. This was achieved through the preoxidation of Fe and the enhanced stability of iron phosphate framework, which significantly increased the separation factor of critical metals to nontarget elements from 56.9 to 1475. The proposed combination of ChCl-FA extraction and the mechanochemical reaction can achieve a highly selective extraction of critical metals from multisource spent LIBs under mild conditions.
从废旧锂离子电池(LIB)阴极材料中回收关键金属(包括锂、镍、钴和锰)的选择性和高效提取技术对于推动循环利用至关重要。定制的深共晶溶剂(DES)氯化胆碱-甲酸(ChCl-FA)在温和条件下(80°C,120 分钟),固液比为 1:200,从混合阴极材料(LiFePO:Li(NiCoMn)O 质量比为 1:1)中提取关键金属时表现出高选择性和高效率。由于粒径减小、晶粒细化和内部储能,机械化学处理可以进一步提高关键金属的浸出性能。此外,机械化学反应有效地抑制了非目标元素(铁和磷)的不良浸出,从而提高了关键金属的选择性和浸出效率。这是通过 Fe 的预氧化和磷酸铁框架稳定性的增强来实现的,这显著提高了关键金属与非目标元素的分离因子从 56.9 增加到 1475。ChCl-FA 萃取和机械化学反应的组合可以在温和条件下从多源废旧 LIB 中高度选择性地提取关键金属。