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一种由铁锌改性玉米秸秆合成的高效生物炭,用于同时固定酸性和碱性土壤中的 Cd。

An efficient biochar synthesized by iron-zinc modified corn straw for simultaneously immobilization Cd in acidic and alkaline soils.

机构信息

Innovation Team of Remediation for Heavy Metal Contaminated Farmlands, Agro-Environmental Protection Institute, Ministry of Agriculture and Rural Affairs, Tianjin, 300191, People's Republic of China; Key Laboratory of Original Environmental Pollution Control, Ministry of Agriculture, Agro-Environmental Protection Institute, Ministry of Agriculture and Rural Affairs, Tianjin, 300191, People's Republic of China.

Innovation Team of Remediation for Heavy Metal Contaminated Farmlands, Agro-Environmental Protection Institute, Ministry of Agriculture and Rural Affairs, Tianjin, 300191, People's Republic of China; Key Laboratory of Original Environmental Pollution Control, Ministry of Agriculture, Agro-Environmental Protection Institute, Ministry of Agriculture and Rural Affairs, Tianjin, 300191, People's Republic of China.

出版信息

Environ Pollut. 2021 Dec 15;291:118129. doi: 10.1016/j.envpol.2021.118129. Epub 2021 Sep 7.

Abstract

Synthetic functional biochar using agricultural waste as raw materials not only serves as an effective means for recycling waste but can also be employed for the remediation of heavy metal contaminated soil. However, the associated effect and mechanism underlying the immobilization of functional biochar in acidic and alkaline soils remain unclear. In this study, a novel iron-zinc oxide composite modified corn straw (Fe/Zn-YBC) was prepared and applied for the remediation of cadmium-contaminated acidic and alkaline farmland soils. The results showed that the addition of Fe/Zn-YBC increased the pH, cation exchange capacity (CEC), and dissolved organic carbon (DOC) in acidic soil, while increased the pH and DOC in alkaline soil. After immobilization for 42 d, the DTPA-Cd content in acidic and alkaline soils treated with Fe/Zn-YBC decreased by 12.77 %-57.45 % and 23.73 %-52.50 %, respectively. Fe/Zn-YBC treatment promoted the transformation of the exchangeable fraction into the Fe/Mn oxyhydroxide fraction of Cd, and increased the abundance and diversity of bacterial communities in the two soils. Furthermore, the SEM-EDS, XRD and FTIR results for Fe/Zn-YBC separated from the test soils showed that the distribution of Cd adsorbed on Fe/Zn-YBC was positively correlated with Fe, Zn, and O. Additionally, the Cd complexes (CdCO, CdZnFeO and CdO) detected on Fe/Zn-YBC indicated that the primary immobilization mechanism of Fe/Zn-YBC involved the complexation of Cd and Fe, Zn oxides, and the precipitation of Cd and CO in acidic and alkaline soils. The efficient remediation capacity and associated mechanism for this novel functional biochar provide insights for improved remediation of heavy metal contaminated farmland soil.

摘要

利用农业废弃物作为原料合成功能生物炭不仅是一种有效的废物回收利用手段,还可以用于修复重金属污染土壤。然而,在酸性和碱性土壤中,功能生物炭的固定化相关效应和机制尚不清楚。本研究制备了一种新型的铁锌氧化物复合改性玉米秸秆(Fe/Zn-YBC),并将其应用于修复镉污染的酸性和碱性农田土壤。结果表明,添加 Fe/Zn-YBC 增加了酸性土壤的 pH 值、阳离子交换量(CEC)和溶解有机碳(DOC),同时增加了碱性土壤的 pH 值和 DOC。固定化 42 d 后,添加 Fe/Zn-YBC 处理的酸性和碱性土壤中 DTPA-Cd 含量分别降低了 12.77%57.45%和 23.73%52.50%。Fe/Zn-YBC 处理促进了可交换态 Cd 向 Fe/Mn 氢氧化物态的转化,并增加了两种土壤中细菌群落的丰度和多样性。此外,从试验土壤中分离出的 Fe/Zn-YBC 的 SEM-EDS、XRD 和 FTIR 结果表明,吸附在 Fe/Zn-YBC 上的 Cd 分布与 Fe、Zn 和 O 呈正相关。此外,在 Fe/Zn-YBC 上检测到的 Cd 配合物(CdCO、CdZnFeO 和 CdO)表明,Fe/Zn-YBC 的主要固定化机制涉及 Cd 与 Fe、Zn 氧化物的络合,以及酸性和碱性土壤中 Cd 和 CO 的沉淀。这种新型功能生物炭的高效修复能力及其相关机制为改善重金属污染农田土壤的修复提供了新的思路。

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