Oxidative Dissolution Process of Sphalerite in Fe2(SO4)3-O3 System: Implications for Heavy Metals Removal and Recovery.

Toxics Pub Date : 2024-04-08 DOI:10.3390/toxics12040275
Mingtong Zhang, Hongbo Zhao, Yisheng Zhang, Xin Lv, Luyuan Zhang, Li Shen, Liang Hu, Jiankang Wen, Louyan Shen, Xianping Luo
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Abstract

Metal sulfides in waste rocks and tailings are susceptible to serious soil and water contamination due to the generation of acid mine drainage (AMD) during stockpiling. The hydrometallurgical process is one of the most essential heavy metal remediation technologies through harmless disposal and resource utilization of the waste sulfides. However, atmospheric hydrometallurgy of sulfides still faces great challenges due to low leaching efficiency and high cost. In this work, we proposed a cooperative leaching system (Fe2(SO4)3-O3) and investigated the oxidative dissolution process of sphalerite (ZnS). Under the optimal conditions, the extracted zinc reached 97.8%. Reactive oxygen species (ROS) (·OH, 1O2 and ·O2-) were identified in the radical quenching experiments. The dissolution of sphalerite did not show passivation due to the ozone's capability to oxidize the sulfur in sphalerite to sulfate. In addition, stirring rate, O3 inlet concentration, and Fe2(SO4)3 concentration had a significant effect on the dissolution of sphalerite. Meanwhile, the apparent activation energy was 24.11 kJ/mol based on kinetic fitting, which indicated that the controlling step of the reaction was mainly a diffusion process. This work demonstrated the cooperative effect of sphalerite leaching in the O3-Fe2(SO4)3 system and provided a theoretical reference for efficient and atmospheric dissolution of sphalerite.
Fe2(SO4)3-O3 体系中闪锌矿的氧化溶解过程:对重金属去除和回收的影响。
废石和尾矿中的金属硫化物在堆放过程中会产生酸性矿井排水(AMD),容易造成严重的土壤和水污染。通过对废硫化物进行无害化处置和资源化利用,湿法冶金工艺是最基本的重金属修复技术之一。然而,由于浸出效率低、成本高,硫化物的常压湿法冶金仍面临巨大挑战。在这项工作中,我们提出了一种协同浸出系统(Fe2(SO4)3-O3),并研究了闪锌矿(ZnS)的氧化溶解过程。在最佳条件下,锌的提取率达到 97.8%。在自由基淬灭实验中发现了活性氧(ROS)(-OH、1O2 和 -O2-)。由于臭氧能将闪锌矿中的硫氧化成硫酸盐,因此闪锌矿的溶解并没有出现钝化现象。此外,搅拌速率、O3 入口浓度和 Fe2(SO4)3 浓度对闪锌矿的溶解也有显著影响。同时,根据动力学拟合,表观活化能为 24.11 kJ/mol,这表明反应的控制步骤主要是扩散过程。该研究证明了闪锌矿在 O3-Fe2(SO4)3 体系中浸出的协同效应,为闪锌矿的高效大气溶解提供了理论参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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