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Title The efficiency of scrap Cu and Al current collector materials as reductants in LIB waste leaching
ID_Doc 24584
Authors Chernyaev, A; Partinen, J; Klemettinen, L; Wilson, BP; Jokilaakso, A; Lundström, M
Title The efficiency of scrap Cu and Al current collector materials as reductants in LIB waste leaching
Year 2021
Published
DOI 10.1016/j.hydromet.2021.105608
Abstract This current study addresses the role of copper and aluminum - typical major components of current collector scrap from battery manufacturing plants - in the leaching of pre-treated LiCoO2-rich battery waste concentrate at industrially relevant process conditions (T = 60 degrees C, [H2SO4] = 2 M, S/L = 200 g/L). An empirical model has been constructed which demonstrates that the effects of both copper and aluminum are significant. Both elements have independent and linear impacts on cobalt extraction and acid consumption. The model predicts that either 11 g of copper (0.75 Cu/Co, mol/mol), 4.8 g of aluminum (0.7 Al/Co, mol/mol) or a combination of both are required for full cobalt extraction from 100 g of sieved industrial battery waste concentrate. Aluminum was shown to influence cobalt leaching although it was less effective (47%) when compared to copper (66%) in terms of current efficiency due to associated side reactions, such as excess H-2 formation. Aluminum has several possible reaction routes for LiCoO2 reduction; in parallel or in series via H-2 formation, Cu2+ cementation and/or Fe3+ reduction, whereas copper acts solely through Fe3+ reduction. These results indicate that by using copper scrap, in preference to the more typical hydrogen peroxide, the CO2 footprint of the battery leaching stage could be decreased by at least 500 kg of CO2 per ton of recycled cobalt. In contrast, the use of aluminum, although promising, is less attractive due to the challenges related to its removal during subsequent solution purification.
Author Keywords Battery waste; Hydrogen peroxide-free; Optimization; Circular economy; Sustainability
Index Keywords Index Keywords
Document Type Other
Open Access Open Access
Source Science Citation Index Expanded (SCI-EXPANDED)
EID WOS:000670150400007
WoS Category Metallurgy & Metallurgical Engineering
Research Area Metallurgy & Metallurgical Engineering
PDF https://doi.org/10.1016/j.hydromet.2021.105608
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