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In situ immobilization of cadmium in soil by stabilized biochar-supported iron phosphate nanoparticles

机译:通过稳定的生物炭负载磷酸铁磷酸铁磷酸盐磷酸盐镉的原位固定

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The potential for nanoscale phosphate amendments to remediate heavy metal contamination has been widely investigated, but the strong tendency of nanoparticles to form aggregates limits the application of this technique in soil. This study synthesized a composite of biochar-supported iron phosphate nanoparticle (BC@Fe-3(PO4)(2)) stabilized by a sodium carboxymethyl cellulose to improve the stability and mobility of the amendment in soil. The sedimentation test and column test demonstrated that BC@Fe-3(PO4)(2) exhibited better stability and mobility than iron phosphate nanoparticles. After 28 days of simulated in situ remediation, the immobilization efficiency of Cd was 60.2 %, and the physiological-based extraction test bioaccessibility was reduced by 53.9 %. The results of sequential extraction procedures indicated that the transformation from exchangeable (EX) Cd to organic matter (OM) and residue (RS) was responsible for the decrease in Cd leachability in soil. Accordingly, the pot test indicated that Cd uptake by cabbage mustard was suppressed by 86.8 %. Compared to tests using iron phosphate nanoparticles, the addition of BC@Fe-3(PO4)(2) to soil could reduce the Fe uptake of cabbage mustard. Overall, this study revealed that BC@Fe-3(PO4)(2) could provide effective in situ remediation of Cd in soil.
机译:纳米级磷酸盐修正以修复重金属污染的可能性已被广泛研究,但纳米颗粒形成聚集体的强烈趋势限制了该技术在土壤中的应用。该研究合成了通过羧甲基纤维素钠稳定化的生物炭负载的磷酸铁纳米粒子(BC-Fe-3(PO4)(2))的复合物,以改善土壤中修正的稳定性和迁移率。沉淀试验和柱试验证明,BC @ Fe-3(PO4)(2)表现出比磷酸铁纳米粒子更好的稳定性和迁移率。模拟原位修复28天后,CD的固定效率为60.2%,生理基础的提取试验生物可接为性降低53.9%。顺序提取程序的结果表明,从可交换(Ex)Cd转化为有机物质(OM)和残留物(RS)负责土壤中CD可浸出性的降低。因此,罐试验表明,白菜芥末的CD吸收抑制了86.8%。与使用铁磷酸铁纳米粒子的试验相比,将BC @ Fe-3(PO4)(2)加入土壤可以降低白菜芥末的Fe摄取。总体而言,本研究表明,BC @ Fe-3(PO4)(2)可以在土壤中进行镉的原位修复。

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