Selective lithium Pre-Leaching from spent NMC black mass via pyrolysis (Carbothermal thermal Treatment) and
Amir Hossein Mohammad Zadeh1, Spencer Cunnigham1, Devon Gray2
1Laboratory for Strategic Materials, Department of Chemical Engineering and Applied Chemistry, University of Toronto, 200 College Street, Toronto, ON M5S 3E5, Canada.
Abstract:
The rapid expansion of lithium-ion battery usage has intensified the need for efficient and economically viable recycling processes capable of selectively recovering lithium from spent cathode materials. Here, we develop and mechanistically evaluate a simplified, reductant-free pyrolysis-leaching route for lithium pre-extraction from NMC-type black mass. Carbothermal reduction (pyrolysis) was conducted at 550-630 °C for 60 min under nitrogen using only the inherent carbon content of the black mass as the reducing agent. Comprehensive characterization, including XRD, Raman spectroscopy, SEM-EDX, ToF-SIMS, and TC/TOC, revealed that carbothermal reduction induces a sequence of phase transformations: (i) decomposition of PVDF and organics to form reactive pyrolytic carbon; (ii) collapse of the NMC layered structure; (iii) carbothermal reduction of Ni and Co oxides; and (iv) formation of water-leachable Li2CO3/Li2O. These modifications increase lithium accessibility while stabilizing transition metals as Ni⁰, Co⁰/CoO, and MnO, enabling selective lithium dissolution at near-neutral pH. Leaching experiments showed that untreated black mass achieves only 21 % Li recovery at pH around 7, whereas pyrolyzed material yields ∼ 63 % Li recovery at the same pH, with < 1-6 % dissolution of Ni, Co, and Mn. This high selectivity eliminates the need for strong acids, reduces impurity load, and preserves transition-metal phases for downstream hydrometallurgical or regeneration processes. A technoeconomic comparison with two representative literature routes demonstrates that the proposed process offers the lowest energy consumption, reagent use, and purification burden, owing to its low-temperature operation, reductant-free design, and minimal chemical inputs.
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