Spent Lithium-Ion Battery Recycling: Multi-stage Synergistic Deep Removal of Impurities and Lithium Extraction

被引:0
作者
Lou, Wen-bo [1 ]
Liu, Dong-yan [2 ]
Wang, Yun [1 ]
Zhao, Da [1 ]
Sun, Zi-cheng [1 ]
Zou, Yi [1 ]
Wang, Sheng-yan [2 ]
Cheng, Quan-guo [1 ]
Li, Jian-zhong [3 ]
Liu, Hong-hui [4 ]
机构
[1] Shenyang Univ, Coll Environm, Shenyang 110044, Peoples R China
[2] Shenyang Univ, Normal Coll, Shenyang 110044, Peoples R China
[3] Northeastern Univ, Sch Met, Shenyang 110819, Peoples R China
[4] North China Inst Sci & Technol, Sch Chem Safety, Langfang 065201, Peoples R China
关键词
Spent lithium-ion batteries; Cathode materials; Lithium-containing mother liquor; Multi-stage synergistic impurities removal; Lithium extraction; VALUABLE METALS; RECOVERY; DISSOLUTION; SEPARATION;
D O I
10.1007/s11814-025-00382-8
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Nowadays, the recycling of spent lithium-ion batteries is a key concern in the energy field. Among them, for the purification of Li-containing mother liquor, the targeted multi-means coupling impurity removal methods are mostly employed, which however, inevitably lead to a Li loss of 3-5% and high costs. In this study, a multi-stage hydrolysis method, combining the residual P and Al, Mg, Cu, Zn, Ni, Fe, forming hydroxide-phosphate co-precipitation for the synergistic impurity separation, was adopted. Thermodynamic calculations show that Li+ and Mg2+ are insensitive to pH when pH < 10, and Al, Cu, Zn, Ni, Fe behave similarly in nature. The impurities should be precipitated as: Fe3+ > Al3+ > Cu2+ > Ni2+ > Zn2+ > Mg2+, with phosphate precipitating first, followed by converting into hydroxide as pH rising. Actual results showed that the order was P > Fe & Al & Cu & Ni & Zn > Mg, and the process was divided into three steps, with separation points at pH = 2.37, 8.66, and 11.00, respectively. All the impurity removal efficiencies were close to 100%, the loss of Li was 1.74%. The optimal conditions for Li2CO3 precipitation were determined: an Na2CO3 addition of 1.5 times the theoretical amount, a temperature of 90 degrees C, a reaction time of 4 h, and a one-time addition of dosing method. Li precipitation efficiency reaches 90.10%, with a 99.95% purity. The results effectively reduced Li losses and provided a practically feasible basis for the industrial purification of Li-containing mother liquor.
引用
收藏
页码:621 / 632
页数:12
相关论文
共 43 条
  • [11] The development of middle rare earth element enrichments in freshwaters: weathering of phosphate minerals
    Hannigan, RE
    Sholkovitz, ER
    [J]. CHEMICAL GEOLOGY, 2001, 175 (3-4) : 495 - 508
  • [12] Direct Recycling Strategy for Spent Lithium Iron Phosphate Powder: an Efficient and Wastewater-Free Process
    Hu, Guorong
    Gong, Yifan
    Peng, Zhongdong
    Du, Ke
    Huang, Min
    Wu, Jiahui
    Guan, Dichang
    Zeng, Jingyao
    Zhang, Baichao
    Cao, Yanbing
    [J]. ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2022, 10 (35) : 11606 - 11616
  • [13] A promising approach for the recovery of high value-added metals from spent lithium-ion batteries
    Hu, Juntao
    Zhang, Jialiang
    Li, Hongxu
    Chen, Yongqiang
    Wang, Chengyan
    [J]. JOURNAL OF POWER SOURCES, 2017, 351 : 192 - 199
  • [14] High-efficiency selective leaching of valuable metals from spent lithium-ion batteries: Effects of Na2S2O8 on the leaching of metals
    Hu, Qian
    Luo, Zhongyan
    Zhou, Huixiang
    Cao, Zhanfang
    [J]. WASTE MANAGEMENT, 2023, 167 : 204 - 212
  • [15] Preparation of single-crystal ternary cathode materials via recycling spent cathodes for high performance lithium-ion batteries
    Huang, Cheng
    Xia, Xue
    Chi, Ziwei
    Yang, Zeheng
    Huang, Haijian
    Chen, Zhangxian
    Tang, Weijian
    Wu, Guoqing
    Chen, Huayong
    Zhang, Weixin
    [J]. NANOSCALE, 2022, 14 (27) : 9724 - 9735
  • [16] Recovery of critical metals from spent Li-ion batteries: Sequential leaching, precipitation, and cobalt-nickel separation using Cyphos IL104
    Ilyas, Sadia
    Srivastava, Rajiv Ranjan
    Singh, K. Vinay
    Chi, Ruan
    Kim, Hyunjung
    [J]. WASTE MANAGEMENT, 2022, 154 : 175 - 186
  • [17] Recycling of spent lithium-ion battery cathode materials by ammoniacal leaching
    Ku, Heesuk
    Jung, Yeojin
    Jo, Minsang
    Park, Sanghyuk
    Kim, Sookyung
    Yang, Donghyo
    Rhee, Kangin
    An, Eung-Mo
    Sohn, Jeongsoo
    Kwon, Kyungjung
    [J]. JOURNAL OF HAZARDOUS MATERIALS, 2016, 313 : 138 - 146
  • [18] Separation and recovery of nickel cobalt manganese lithium from waste ternary lithium-ion batteries
    Li, Chunyan
    Dai, Guofu
    Liu, Runyu
    Wang, Chen
    Wang, Sheng
    Ju, Yue
    Jiang, Haishen
    Jiao, Shaojun
    Duan, Chenlong
    [J]. SEPARATION AND PURIFICATION TECHNOLOGY, 2023, 306
  • [19] Liang H.L., 2020, Nonferr. Metals Extr. Metall., V41
  • [20] Sustainable recycling of spent ternary lithium-ion batteries via an environmentally friendly process: Selective recovery of lithium and non-hazardous upcycling of residue
    Liang, Jianxing
    Chen, Rongcan
    Gu, Jia-nan
    Li, Jingdong
    Xue, Yixin
    Shi, Feng
    Huang, Bingji
    Guo, Mingming
    Jia, Jinping
    Li, Kan
    Sun, Tonghua
    [J]. CHEMICAL ENGINEERING JOURNAL, 2024, 481