Thermally Assisted Sulfuric Acid Leaching of Clay-Type Lithium Ores: Protonation-Induced Al-O Bond Cleavage and
Rong Huang1, Jian Liu1, Dianwen Liu1
1State Key Laboratory of Complex Nonferrous Metal Resources Clean Utilization, Yunnan Key Laboratory of Green Separation and Enrichment of Strategic Mineral Resources, Faculty of Land Resources Engineering, Kunming University of Science and Technology, Kunming 650093, China.
Abstract:
The green exploitation of clay-type lithium deposits in Yunnan represents a strategically critical supplement to alleviating lithium supply-demand imbalances. A combined flotation-magnetic pretreatment removed a significant amount of lithium-barren high-iron gangue minerals (hematite and garnet) prior to leaching. The optimized two-stage sulfuric acid leaching process comprises primary leaching with 30 wt % H2SO4 at 126 °C (solid-liquid ratio 1:5 g/mL, 1.5 h), followed by secondary water leaching (1:8 g/mL, 0.5 h). This approach achieved 87.89% Li leaching efficiency with 72.80% residue yield. Mineralogical mapping, Time-of-flight secondary ion mass spectrometry (TOF-SIMS), and X-ray photoelectron spectroscopy (XPS) analyses revealed that H+ protonation partially disrupts Al-O octahedra via bond polarization, liberating Al3+/Li+, which form soluble sulfate complexes (Al2(SO4)3, Li2SO4), suppressing hydrolysis. Molecular dynamics (MD) simulations verified enhanced H3O+-Li+ ion exchange and accelerated diffusion kinetics at elevated temperatures (399 K), with Li+ diffusivity increasing by 228% versus 298 K. Compared to roasting methods, this approach eliminates energy-intensive pretreatment while maintaining high Al dissolution (72.70%) and minimal Si release (5.97%). Moreover, the integrated flotation-magnetic pretreatment significantly reduced acid consumption in subsequent leaching. The leaching temperature (126 °C) is substantially lower than that required by most direct leaching processes. The protonation-complexation mechanism provides a sustainable pathway for clay-type lithium extraction.
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