TY - JOUR
T1 - Full closed-loop green regeneration and recycling technology for spent ternary lithium batteries
T2 - Hydrogen reduction with sulfuric acid cycle -leaching process
AU - Shi, Gongchu
AU - Zhang, Ning
AU - Cheng, Jian
AU - Zhang, Shihao
AU - Shao, Xinxuan
AU - Wen, Lingkai
AU - Chen, Xiaohui
AU - Xin, Baoping
N1 - Publisher Copyright:
© 2023 Elsevier Ltd
PY - 2023/12
Y1 - 2023/12
N2 - With the rapid growth in demand and capacity of lithium-ion batteries (LIBs), a large number of spent LIBs with the dual attributes of hazardous waste and high value-added resources have also experienced a spurt in retirement. In this paper, a process of hydrogen reduction - water-leaching to recover Li – H2SO4 cycle-leaching to recover Ni/Co/Mn to regenerate ternary cathode (NCM) precursor was used to treat mixed spent NCM, and its recovery mechanism was investigated. Under the optimal conditions, Li was completely converted into readily-soluble LiOH by hydrogen reduction and then recovered by water-leaching and CO2 precipitation to regenerate high-purity Li2CO3. While Ni/Co/Mn was reduced to low-valent and could basically be completely leached by H2SO4 and the H2SO4-leaching solution could be cycled to leach Ni/Co/Mn after supplementing with some H2SO4. When the cycle time reached 5, the concentrations of Ni/Co/Mn reached 144.79 g/L, 100.01 g/L, 113.39 g/L, respectively. Finally, a few solids that could not be completely dissolved due to the cycle were leached out by H2SO4 and mixed with the cycle-leaching solution to regenerate the NCM precursor with high-purity and excellent performance for direct commercial application by coprecipitation.
AB - With the rapid growth in demand and capacity of lithium-ion batteries (LIBs), a large number of spent LIBs with the dual attributes of hazardous waste and high value-added resources have also experienced a spurt in retirement. In this paper, a process of hydrogen reduction - water-leaching to recover Li – H2SO4 cycle-leaching to recover Ni/Co/Mn to regenerate ternary cathode (NCM) precursor was used to treat mixed spent NCM, and its recovery mechanism was investigated. Under the optimal conditions, Li was completely converted into readily-soluble LiOH by hydrogen reduction and then recovered by water-leaching and CO2 precipitation to regenerate high-purity Li2CO3. While Ni/Co/Mn was reduced to low-valent and could basically be completely leached by H2SO4 and the H2SO4-leaching solution could be cycled to leach Ni/Co/Mn after supplementing with some H2SO4. When the cycle time reached 5, the concentrations of Ni/Co/Mn reached 144.79 g/L, 100.01 g/L, 113.39 g/L, respectively. Finally, a few solids that could not be completely dissolved due to the cycle were leached out by H2SO4 and mixed with the cycle-leaching solution to regenerate the NCM precursor with high-purity and excellent performance for direct commercial application by coprecipitation.
KW - Complete leaching
KW - HSO cycle-leaching
KW - Hydrogen reduction
KW - Recovery mechanism
KW - Regenerated materials
KW - Spent ternary cathodes
UR - http://www.scopus.com/inward/record.url?scp=85173580920&partnerID=8YFLogxK
U2 - 10.1016/j.jece.2023.111207
DO - 10.1016/j.jece.2023.111207
M3 - Article
AN - SCOPUS:85173580920
SN - 2213-2929
VL - 11
JO - Journal of Environmental Chemical Engineering
JF - Journal of Environmental Chemical Engineering
IS - 6
M1 - 111207
ER -