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砷和镉在受污染土壤同时修复过程中与铁锰改性生物炭相关的转化。

Transformation of As and Cd associated with Fe-Mn-modified biochar during simultaneous remediation on the contaminated soil.

机构信息

Department of Environmental Engineering, School of Metallurgy and Environment, Central South University, Changsha, 410083, People's Republic of China.

POWERCHINA Eco-Environmental Group Co., LTD., Shenzhen, 518102, People's Republic of China.

出版信息

Environ Sci Pollut Res Int. 2024 Jul;31(34):47408-47419. doi: 10.1007/s11356-024-34384-6. Epub 2024 Jul 13.

Abstract

Here, Fe- and Mn-modified biochar (BC-Fe-Mn) was applied to simultaneously stabilize As and Cd in the contaminated soil. The removal efficiencies for NaHCO-extractable As and DTPA-extractable Cd by BC-Fe-Mn were 60.8% and 49.6%, respectively. The speciation analyses showed that the transformation to low-crystallinity Fe-bound (F3) As, Fe-Mn oxide-bound (OX) of Cd, and residual As and Cd was primarily attributed to stabilizing the two metal(loid)s. Moreover, the correlation analyses showed that the increase of As in F3 fraction was significantly and positively associated with the increase of OX fraction Mn (r = 0.64). Similarly, OX fraction Cd was increased notably with increasing OX fraction Fe (r = 0.91) and OX fraction Mn (r = 0.76). In addition, a novel dialysis experiment was performed to separate the reacted BC-Fe-Mn from the soil for intensively investigating the stabilization mechanisms for As and Cd by BC-Fe-Mn. The characteristic crystalline compounds of (FeMn)OOH and FeO on the surface of BC-Fe-Mn were revealed by SEM-EDS and XRD. And FTIR analyses showed that α-FeOOH, R-COOFe/Mn, and O-H on BC-Fe-Mn potentially served as the reaction sites for As and Cd. A crystalline compound of MnAsO was found in the soil treated by BC-Fe-Mn in the dialysis experiment. Thus, our results are beneficial to deeper understand the mechanisms of simultaneous stabilization of As and Cd by BC-Fe-Mn in soil and support the application of the materials on a large scale.

摘要

在这里,采用铁和锰改性生物炭(BC-Fe-Mn)同时稳定污染土壤中的砷和镉。BC-Fe-Mn 对可碳酸氢钠提取的砷和可 DTPA 提取的镉的去除效率分别为 60.8%和 49.6%。形态分析表明,低结晶度铁结合(F3)砷、镉的铁锰氧化物结合(OX)以及残余砷和镉的转化主要归因于稳定两种金属(类)。此外,相关分析表明,F3 分相中砷的增加与 OX 分相中锰(r=0.64)的增加呈显著正相关。同样,OX 分相中镉的增加与 OX 分相中铁(r=0.91)和 OX 分相中锰(r=0.76)的增加显著相关。此外,还进行了一项新的透析实验,将反应后的 BC-Fe-Mn 与土壤分离,以深入研究 BC-Fe-Mn 对砷和镉的稳定机制。通过 SEM-EDS 和 XRD 揭示了 BC-Fe-Mn 表面(FeMn)OOH 和 FeO 的特征结晶化合物。并且 FTIR 分析表明,BC-Fe-Mn 上的α-FeOOH、R-COOFe/Mn 和 O-H 可能作为砷和镉的反应位点。在透析实验中,发现用 BC-Fe-Mn 处理的土壤中有 MnAsO 结晶化合物。因此,我们的结果有助于更深入地了解 BC-Fe-Mn 同时稳定土壤中砷和镉的机制,并支持该材料的大规模应用。

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