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磷石膏/钛石膏耦合增强生物炭对铅的固定:矿化反应行为及电子转移效应

Phosphogypsum/titanium gypsum coupling for enhanced biochar immobilization of lead: Mineralization reaction behavior and electron transfer effect.

作者信息

Guo Ziqi, Zhang Chaonan, Jiang Hanfeng, Li Lingli, Li Zhonghua, Zhao Lei, Chen Haoming

机构信息

School of Environmental and Biological Engineering, Nanjing University of Science and Technology, Nanjing, 210094, China.

School of Mechanical Engineering, Nanjing University of Science and Technology, Nanjing, 210094, China.

出版信息

J Environ Manage. 2023 Nov 1;345:118781. doi: 10.1016/j.jenvman.2023.118781. Epub 2023 Aug 22.

Abstract

The hazards caused by Pb pollution have received worldwide attention. Phosphogypsum (PG) and titanium gypsum (TG) have the disadvantage of limited adsorption capacity and poor dispersion when used as heavy metal adsorbents on their own. The excellent pore and electron transfer capacity of biochar makes it possible to combine with PG and TG to solidify/stabilize Pb. In this study, the mechanism of Pb adsorption/immobilization by rice husk biochar (BC) combined with PG/TG was investigated in terms of both mineral formation and electron transfer rate. The removal rate of Pb by BC composite PG (BC/PG-Pb) or TG (BC/TG-Pb) was as high as 97%-98%, an increase of 120.9% and 122.5% over BC. Adsorption kinetics and mineral precipitation results indicate that the main removal of Pb from BC/PG-Pb and BC/TG-Pb is achieved by PG/TG induced Pb-sulfate and Pb-phosphate formation. The addition of PG/TG significantly enhances the formation of stable Pb-minerals on the biochar surface, with the proportion of non-bioaccessible forms exceeding 50%. The four-step extraction results confirm that P and F in PG/TG are key in facilitating the conversion of Pb minerals to pyromorphite. The rich pore structure of biochar not only disperses the easily agglomerated PG/TG onto the biochar surface, but also attracts Pb for uniformly dispersed precipitation. Furthermore, the excellent electrical conductivity and smooth electron transfer channels of biochar facilitate the reaction rate of Pb mineralization. Overall, the use of biochar in combination with PG/TG is a promising technology for the combination of solid waste resourceisation and Pb remediation.

摘要

铅污染所造成的危害已受到全球关注。磷石膏(PG)和钛石膏(TG)单独用作重金属吸附剂时,存在吸附容量有限和分散性差的缺点。生物炭具有优异的孔隙和电子转移能力,使其有可能与PG和TG结合以固化/稳定铅。在本研究中,从矿物形成和电子转移速率两方面研究了稻壳生物炭(BC)与PG/TG结合对铅的吸附/固定机制。BC复合PG(BC/PG-Pb)或TG(BC/TG-Pb)对铅的去除率高达97%-98%,比BC分别提高了120.9%和122.5%。吸附动力学和矿物沉淀结果表明,BC/PG-Pb和BC/TG-Pb对铅的主要去除是通过PG/TG诱导形成硫酸铅和磷酸铅实现的。PG/TG的添加显著增强了生物炭表面稳定铅矿物的形成,不可生物利用形式的比例超过50%。四步提取结果证实,PG/TG中的P和F是促进铅矿物转化为磷氯铅矿的关键。生物炭丰富的孔隙结构不仅将容易团聚的PG/TG分散到生物炭表面,还吸引铅进行均匀分散沉淀。此外,生物炭优异的电导率和平滑的电子转移通道促进了铅矿化的反应速率。总体而言,生物炭与PG/TG结合使用是一种将固体废物资源化与铅修复相结合的有前景的技术。

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