Zeng Keman, Liu Lihu, Zheng Ningguo, Yu Yongxiang, Xu Shengwen, Yao Huaiying
Research Center for Environmental Ecology and Engineering, School of Environmental Ecology and Biological Engineering, Wuhan Institute of Technology, Wuhan, 430205, China.
Research Center for Environmental Ecology and Engineering, School of Environmental Ecology and Biological Engineering, Wuhan Institute of Technology, Wuhan, 430205, China.
Environ Res. 2025 Jun 1;274:121327. doi: 10.1016/j.envres.2025.121327. Epub 2025 Mar 7.
The toxicity and bioavailability of arsenic (As) in soils are largely determined by its speciation. Iron (Fe) is widely present in soils with a strong affinity for As, and therefore the environmental behaviors of As and Fe oxides (including oxides, hydrates and hydrated oxides) are closely correlated with each other. The redox fluctuations of Fe driven by changes in the environment can significantly affect As speciation and its fate in soils. The interaction between Fe and As has garnered widespread attention, and the adsorption mechanisms of As by Fe oxides have also been well-documented. However, there is still a lack of systematic understanding of how Fe redox dynamics affects As speciation depending on the soil environmental conditions. In this review, we summarize the mechanisms for As speciation transformation and redistribution, as well as the role of environmental factors in the main Fe redox processes in soils. These processes include the biotic Fe oxidation mediated by Fe-oxidizing bacteria, abiotic Fe oxidation by oxygen or manganese oxides, dissimilatory Fe reduction mediated by Fe-reducing bacteria, and Fe(II)-catalyzed transformation of Fe oxides. This review contributes to a deeper understanding of the environmental behaviors of Fe and As in soils, and provides theoretical guidance for the development of remediation strategies for As-contaminated soils.
土壤中砷(As)的毒性和生物有效性在很大程度上取决于其形态。铁(Fe)广泛存在于土壤中,对砷具有很强的亲和力,因此砷与铁的氧化物(包括氧化物、水合物和水合氧化物)的环境行为密切相关。环境变化驱动的铁的氧化还原波动会显著影响土壤中砷的形态及其归宿。铁与砷之间的相互作用已引起广泛关注,铁氧化物对砷的吸附机制也有充分的文献记载。然而,对于铁的氧化还原动力学如何根据土壤环境条件影响砷的形态,仍缺乏系统的认识。在本综述中,我们总结了砷形态转化和再分配的机制,以及环境因素在土壤中主要铁氧化还原过程中的作用。这些过程包括铁氧化细菌介导的生物铁氧化、氧气或锰氧化物介导的非生物铁氧化、铁还原细菌介导的异化铁还原以及铁(II)催化的铁氧化物转化。本综述有助于更深入地理解土壤中铁和砷的环境行为,并为开发砷污染土壤的修复策略提供理论指导。