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胶体和纳米颗粒结合的砷在污染稻田土壤中的还原和再氧化过程中的迁移。

Mobilization of Colloid- and Nanoparticle-Bound Arsenic in Contaminated Paddy Soils during Reduction and Reoxidation.

机构信息

State Key Laboratory of Soil and Sustainable Agriculture, Institute of Soil Science, Chinese Academy of Sciences, Nanjing 210008, China.

Department of Environmental Science and Engineering, Fudan University, Shanghai 200433, China.

出版信息

Environ Sci Technol. 2023 Jul 4;57(26):9843-9853. doi: 10.1021/acs.est.3c03051. Epub 2023 Jun 21.

Abstract

The association of arsenic (As) with colloidal particles could facilitate its transport to adjacent water systems or alter its availability in soil-rice systems. However, little is known about the size distribution and composition of particle-bound As in paddy soils, particularly under changing redox conditions. Here, we incubated four As-contaminated paddy soils with distinctive geochemical properties to study the mobilization of particle-bound As during soil reduction and subsequent reoxidation. Using transmission electron microscopy-energy dispersive spectroscopy and asymmetric flow field-flow fractionation, we identified organic matter (OM)-stabilized colloidal Fe, most likely in the form of (oxy)hydroxide-clay composite, as the main arsenic carriers. Specifically, colloidal As was mainly associated with two size fractions of 0.3-40 and >130 kDa. Soil reduction facilitated the release of As from both fractions, whereas reoxidation caused their rapid sedimentation, coinciding with solution Fe variations. Further quantitative analysis demonstrated that As concentrations positively correlated with both Fe and OM concentrations at nanometric scales (0.3-40 kDa) in all studied soils during reduction and reoxidation, yet the correlations are pH-dependent. This study provides a quantitative and size-resolved understanding of particle-bound As in paddy soils, highlighting the importance of nanometric Fe-OM-As interactions in paddy As geochemical cycling.

摘要

砷(As)与胶体颗粒的结合可能会促进其向相邻水系的迁移,或改变其在土壤-水稻系统中的有效性。然而,对于水稻土中颗粒结合态砷的大小分布和组成,特别是在不断变化的氧化还原条件下,人们知之甚少。在这里,我们用具有不同地球化学性质的四种砷污染稻田土进行培养,以研究土壤还原过程中颗粒结合态砷的迁移及其随后的再氧化。利用透射电子显微镜-能量色散光谱和不对称流场分离技术,我们鉴定出有机物质(OM)稳定的胶体 Fe 是砷的主要载体,很可能以(氧)氢氧化物-粘土复合物的形式存在。具体来说,胶体砷主要与两个大小分数(0.3-40 和>130 kDa)有关。土壤还原促进了两个分数中砷的释放,而氧化还原作用则导致它们迅速沉淀,与溶液铁的变化一致。进一步的定量分析表明,在所有研究的土壤中,还原和再氧化过程中,砷浓度与纳米尺度(0.3-40 kDa)的铁和 OM 浓度均呈正相关,但相关性取决于 pH 值。本研究定量并解析了水稻土中颗粒结合态砷,突出了纳米尺度 Fe-OM-As 相互作用在水稻砷地球化学循环中的重要性。

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