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新型磁性可回收 FeO/巯基功能化凹凸棒石珠快速降低污染农田土壤中的镉。

Rapidly reducing cadmium from contaminated farmland soil by novel magnetic recyclable FeO/mercapto-functionalized attapulgite beads.

机构信息

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

CAS Key Laboratory of Coastal Environmental Processes and Ecological Remediation, Yantai Institute of Coastal Zone Research (YIC), Chinese Academy of Sciences, Yantai 264003, China; Shandong Key Laboratory of Coastal Environmental Processes, YICCAS, Yantai 264003, China.

出版信息

Environ Pollut. 2024 Jun 15;351:124056. doi: 10.1016/j.envpol.2024.124056. Epub 2024 Apr 25.

Abstract

Reducing cadmium (Cd) content from contaminated farmland soils remains a major challenge due to the difficulty in separating commonly used adsorbents from soils. This study synthesized novel millimeter-sized magnetic FeO/mercapto-functionalized attapulgite beads (MFBs) through a facile one-step gelation process incorporating alginate. The MFBs inherit the environmental stability of alginate and enhance its mechanical strength by hybridizing FeO and clay mineral components. MFBs can be easily separated from flooded soils by magnets. When applied to 12 Cd-polluted paddy soils and 14 Cd-polluted upland soils, MFBs achieved Cd(II) removal rates ranging from 16.9% to 62.2% and 9.8%-54.6%, respectively, within a 12-h period. The MFBs predominantly targeted the exchangeable and acid soluble, and reducible fractions of Cd, with significantly enhanced removal efficiencies in paddy soils compared to upland soils. Notably, MFBs exhibited superior adsorption performance in soils with lower pH and organic matter (OM) content, where the bioavailability and mobility of Cd are heightened. The reduction of Cd content by MFBs is a sustainable and safe method, as it permanently removes the bioavailable Cd from soil, rather than temporarily reducing its bioavailability. The functional groups such as -SH, -OH, present in attapulgite and alginate of MFBs, played a crucial role in Cd(II) adsorption. Additionally, attapulgite and zeolite provided a porous matrix structure that further enhanced Cd(II) adsorption. The results of X-ray photoelectron spectroscopy suggested that both chemical precipitation and surface complexation contributed to Cd(II) removal. The MFBs maintained 87.6% Cd removal efficiency after 5 regeneration cycles. The surface of the MFBs exposed new adsorption sites and increased the specific surface area during multiple cycles with Cd-contaminated soil. This suggests that MFBs treatment with magnetic retrieval is a potentially effective pathway for the rapid removal of Cd from contaminated farmland soils.

摘要

从污染农田土壤中降低镉 (Cd) 含量仍然是一个主要挑战,因为通常难以将吸附剂从土壤中分离出来。本研究通过一种简便的一步凝胶化过程,将海藻酸钠与新型毫米大小的磁性 FeO/巯基功能化凹凸棒石珠(MFB)结合在一起。MFB 继承了海藻酸钠的环境稳定性,并通过混合 FeO 和粘土矿物成分来增强其机械强度。MFB 可以通过磁铁从淹没的土壤中轻松分离。当应用于 12 个 Cd 污染的稻田土壤和 14 个 Cd 污染的旱地土壤时,MFB 在 12 小时内分别实现了 16.9%至 62.2%和 9.8%至 54.6%的 Cd(II)去除率。MFB 主要针对可交换、酸可溶和可还原的 Cd 分数,在稻田土壤中的去除效率明显高于旱地土壤。值得注意的是,MFB 在 pH 值和有机质 (OM) 含量较低的土壤中表现出卓越的吸附性能,因为 Cd 的生物有效性和迁移性较高。MFB 降低土壤中 Cd 含量是一种可持续且安全的方法,因为它会永久性地将可利用的 Cd 从土壤中去除,而不是暂时降低其生物利用度。MFB 中的巯基 (-SH)、羟基 (-OH) 等官能团在 Cd(II)吸附中发挥了关键作用。此外,凹凸棒石和沸石提供了多孔基质结构,进一步增强了 Cd(II)的吸附。X 射线光电子能谱的结果表明,化学沉淀和表面络合共同促成了 Cd(II)的去除。MFB 在经过 5 次再生循环后仍保持 87.6%的 Cd 去除效率。在多次与 Cd 污染土壤的循环中,MFB 的表面暴露了新的吸附位点并增加了比表面积。这表明,用磁性回收处理 MFB 是一种从污染农田土壤中快速去除 Cd 的有效途径。

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