Materials ScienceChemistryEngineering

Amir Hossein Mohammad Zadeh, Spencer Cunnigham, Devon Gray, Sevan Bedrossian, Baian Almusned, Jeffrey D. Henderson, Gisele Azimi

2026.1.6Waste Management

DOI: 10.1016/j.wasman.2026.115339

要旨

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.

引用形式

ZADEH, Amir Hossein Mohammad, et al. Selective lithium pre-leaching from spent NMC black mass via pyrolysis (carbothermal thermal treatment) and controlled leaching. Waste Management, 2026, 212: 115339.