Sulfidation of Smithsonite via Microwave Roasting under Low-Temperature Conditions

Author:

Kang Jiawei1,Yin Shubiao1ORCID,Li Mingxiao2,Zhang Xingzhi1,Wen Xujie3,Zhang Hanping2,Nie Qi2,Lei Ting1

Affiliation:

1. School of Metallurgy and Energy Engineering, Kunming University of Science and Technology, Kunming 650093, China

2. School of Metallurgy and Mines, Kunming Metallurgy College, Kunming 650300, China

3. School of Land Resources Engineering, Kunming University of Science and Technology, Kunming 650093, China

Abstract

This study employs microwave roasting to decompose smithsonite mineral (zinc carbonate) into zinc oxide, which then reacts with pyrite to sulfurize its surface, forming zinc sulfide. This process is beneficial for the flotation recovery of zinc oxide minerals. The surface sulfidation behavior of smithsonite under low-temperature microwave roasting conditions is examined through X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), scanning electron microscopy (SEM), and thermodynamic calculations. XRD and thermodynamic analysis indicate that smithsonite completely decomposes into zinc oxide at 400 °C. Introducing a small amount of pyrite as a sulfidizing reagent leads to the formation of sulfides on the surface of decomposed smithsonite. XPS analysis confirms that the sulfide formed on the surface is zinc sulfide. SEM analysis reveals that sulfides are distributed on the surface of smithsonite, and the average sulfur concentration increases with the pyrite dosage. Microwave-assisted sulfurization of smithsonite (ZnCO3) was found to significantly enhance its floatability compared to conventional sulfurization methods. The optimal mass ratio of ZnCO3 to FeS2 is approximately 1:1.5, with the best temperature being 400 °C. These findings provide a technical solution for the application of microwave roasting in the efficient recovery of smithsonite through flotation.

Funder

Young Talent Special Project of Yunnan Province’s Xingdian Elite Support Program

General Project of Yunnan Provincial Basic Research Program

Doctoral Research Startup Fund Project of Kunming Metallurgy College

Publisher

MDPI AG

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