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Efficient recycling of spent Ni-Cd batteries through photocatalytic assisted leaching using TiO2 nanopowder
Morteza Rezaei1, Saeed Sheibani1
1School of Metallurgy and Materials Engineering, College of Engineering, University of Tehran, Tehran, Iran.
Abstract:
This study introduces an innovative recycling method combining photocatalytic reactions with hydrometallurgy using a TiO2 photocatalyst for spent Ni-Cd batteries recovery. Compared to traditional methods, a cost-effective process was developed with mild sulfuric acid (1 M H2SO4) at a low temperature of 25 °C. The effects of reaction time, TiO2 photocatalyst dosage, and solid-liquid (S-L) ratio on leaching recovery were investigated and optimized using response surface methodology (RSM), resulting in high recovery percentages of Ni, Co, and Cd at 86, 97, and 96 %, respectively. Optimal conditions included a reaction time of 105 min, a TiO2 dosage of 3.34 mg mL-1, and an S-L ratio of 0.03 g mL-1. By comparing leaching and TiO2-assisted leaching, results showed that the presence of the TiO2 photocatalyst under UV radiation improved the recovery percentage for Ni, Co, and Cd by over 27, 16, and 19 %, respectively. Kinetic analysis using the shrinking core model (SCM) indicated that in TiO2-assisted leaching, the rate-controlling mechanism shifted from chemical control to diffusion control through the ash layer. The photoexcitation of TiO2 generates reactive oxygen species and H+ ions, which synergistically oxidize and recover these metals efficiently. Results show that TiO2 photocatalysis enhances reactivity, enabling faster and more efficient metal recovery through leaching. Overall, these research findings suggest a novel approach for utilizing photocatalysts in the leaching of secondary sources, resulting in enhanced process kinetics and optimal recovery rates at ambient temperatures and with low concentrations of milder acids like H2SO4.

