Recycling of spent lithium-ion batteries via sulfidation shock

被引:0
作者
Zhang, Beikai [1 ]
Wang, Lanbin [1 ]
Song, Duanmei [1 ]
Wu, Jing [1 ]
Yu, Jiadong [1 ]
Li, Jinhui [1 ]
机构
[1] Tsinghua Univ, Sch Environm, State Key Joint Lab Environm Simulat & Pollut Cont, Beijing 100084, Peoples R China
关键词
Spent lithium-ion batteries; Electrothermal metallurgy; Selective sulfidation; Battery metal; Recycling; SELECTIVE SULFIDATION; CATHODE MATERIALS; RECOVERY; SLAG;
D O I
10.1016/j.cej.2025.159206
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Extracting battery metals from spent lithium-ion batteries (LIBs) is a promising solution to address the crisis in battery material supply and the risk of heavy metal pollution. This study proposes a selective sulfidation shock (SS) strategy for the recovery of battery metals from LIBs. The transient high temperatures (similar to 1000 degrees C) generated by pulsed direct current induce solid-phase interfacial sulfidation reactions of lithium (Li) in cathode particles, preventing the generation of sulfur-containing flue gases while enhancing the selective recovery of Li metal. The thermal shock causes Li to quickly volatilize and concentrate on the cathode particle surface owing to saturation vapor pressure differences between Li and transition metals, where it reacts with the high-melting-point sulfurizing agent (CaSO4) to produce easily soluble Li2SO4. The SS process rapidly achieves the transformation of lithium-containing phases within mere seconds, and the subsequent leaching rate of Li in water increases from 40 % to 89 %, with the leaching kinetics improved by 36 times. In addition, thermal shock also promotes the release of lattice oxygen, thereby synergistically enhancing the reduction leaching of transition metal oxides. A comprehensive life cycle assessment revealed that this SS strategy can reduce greenhouse gas emissions by 22 %-43 % compared to traditional pyrometallurgical and hydrometallurgical processes while also yielding 4.97 USD/kg economic benefits.
引用
收藏
页数:10
相关论文
共 43 条
  • [1] Simulation-based life cycle assessment of secondary materials from recycling of lithium-ion batteries
    Ali, Abdur-Rahman
    Bartie, Neill
    Husmann, Jana
    Cerdas, Felipe
    Schroder, Daniel
    Herrmann, Christoph
    [J]. RESOURCES CONSERVATION AND RECYCLING, 2024, 202
  • [2] [Anonymous], 2024, Electric Vehicle Outlook
  • [3] Correlating Structural Changes and Gas Evolution during the Thermal Decomposition of Charged LixNi0.8Co0.15Al0.05O2 Cathode Materials
    Bak, Seong-Min
    Nam, Kyung-Wan
    Chang, Wonyoung
    Yu, Xiqian
    Hu, Enyuan
    Hwang, Sooyeon
    Stach, Eric A.
    Kim, Kwang-Bum
    Chung, Kyung Yoon
    Yang, Xiao-Qing
    [J]. CHEMISTRY OF MATERIALS, 2013, 25 (03) : 337 - 351
  • [4] FactSage thermochemical software and databases, 2010-2016
    Bale, C. W.
    Belisle, E.
    Chartrand, P.
    Decterov, S. A.
    Eriksson, G.
    Gheribi, A. E.
    Hack, K.
    Jung, I. -H.
    Kang, Y. -B.
    Melancon, J.
    Pelton, A. D.
    Petersen, S.
    Robelin, C.
    Sangster, J.
    Spencer, P.
    Van Ende, M-A.
    [J]. CALPHAD-COMPUTER COUPLING OF PHASE DIAGRAMS AND THERMOCHEMISTRY, 2016, 54 : 35 - 53
  • [5] Selective recovery of lithium and efficient leaching of transition metals from spent LiNixCoyMnzO2 batteries based on a synergistic roasting process
    Chang, Di
    Yang, Shenghai
    Shi, Pengfei
    Jie, Yafei
    Hu, Fang
    Fang, Gang
    Chen, Yongming
    [J]. CHEMICAL ENGINEERING JOURNAL, 2022, 449
  • [6] Battery metal recycling by flash Joule heating
    Chen, Weiyin
    Chen, Jinhang
    Bets, Ksenia V.
    Salvatierra, Rodrigo V.
    Wyss, Kevin M.
    Gao, Guanhui
    Choi, Chi Hun
    Deng, Bing
    Wang, Xin
    Li, John Tianci
    Kittrell, Carter
    La, Nghi
    Eddy, Lucas
    Scotland, Phelecia
    Cheng, Yi
    Xu, Shichen
    Li, Bowen
    Tomson, Mason B.
    Han, Yimo
    Yakobson, Boris I.
    Tour, James M.
    [J]. SCIENCE ADVANCES, 2023, 9 (39):
  • [7] Selective extraction of valuable metals from spent EV power batteries using sulfation roasting and two stage leaching process
    Chen, Yongming
    Shi, Pengfei
    Chang, Di
    Jie, Yafei
    Yang, Shenghai
    Wu, Guoqing
    Chen, Huayong
    Zhu, Jiannan
    Hu, Fang
    Wilson, Benjamin P.
    Lundstrom, Mari
    [J]. SEPARATION AND PURIFICATION TECHNOLOGY, 2021, 258
  • [8] Flash upcycling of waste glass fibre-reinforced plastics to silicon carbide
    Cheng, Yi
    Chen, Jinhang
    Deng, Bing
    Chen, Weiyin
    Silva, Karla J.
    Eddy, Lucas
    Wu, Gang
    Chen, Ying
    Li, Bowen
    Kittrell, Carter
    Xu, Shichen
    Si, Tengda
    Marti, Angel A.
    Yakobson, Boris I.
    Zhao, Yufeng
    Tour, James M.
    [J]. NATURE SUSTAINABILITY, 2024, 7 (04) : 452 - 462
  • [9] Dai Q., 2019, Argonne National Laboratory, DOI [10.2172/1530874, DOI 10.2172/1530874]
  • [10] Recycled Lithium from Simulated Pyrometallurgical Slag by Chlorination Roasting
    Dang, Hui
    Wang, Benfeng
    Chang, Zhidong
    Wu, Xue
    Feng, Jingge
    Zhou, Hualei
    Li, Wenjun
    Sun, Changyan
    [J]. ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2018, 6 (10): : 13160 - 13167