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生物炭负载纳米零价铁(BC-nZVI)对三氯乙烯的降解:比表面积和电化学性质的作用

Degradation of trichloroethylene by biochar supported nano zero-valent iron (BC-nZVI): The role of specific surface area and electrochemical properties.

作者信息

Hou Daibing, Cui Xuedan, Liu Meng, Qie Hantong, Tang Yiming, Leng Wenpeng, Luo Nan, Luo Huilong, Lin Aijun, Yang Wenjie, Wei Wenxia, Zheng Tianwen

机构信息

College of Chemical Engineering, Beijing University of Chemical Technology, Beijing 100029, PR China.

Institute of Resources and Environment, Beijing Academy of science and technology, Beijing 100095, PR China.

出版信息

Sci Total Environ. 2024 Jan 15;908:168341. doi: 10.1016/j.scitotenv.2023.168341. Epub 2023 Nov 6.

Abstract

Direct electron transfer and the involvement of atomic hydrogen (H) are considered the main mechanisms for reductive dechlorination promoted by nano zero-valent iron (nZVI) supported on highly conductive carbon. It is still unclear how precisely H, the specific surface area, and the electrochemical characteristics contribute to biochar supported nano zero-valent iron (BC-nZVI) activity in chlorinated hydrocarbon contaminant removal. In this study, a range of BC-nZVIs were prepared by a liquid-phase reduction process, and the contributions of specific surface area and electrochemical performance to H generation and electron transfer have been assessed. The mechanism of trichloroethylene (TCE) dechlorination by BC-nZVIs has been evaluated in terms of removal efficiency and the ultimate degradation products. The results have demonstrated that BC-nZVIs exhibit a higher specific surface area and TCE degradation efficiency compared with the bare nZVI. Ethane, ethylene, and acetylene were the principal TCE degradation products. The elimination of TCE was not significantly affected by differences in BC-nZVI specific surface area, but electron transfer and sustained generation of H were dependent on the catalyst electrochemical characteristics. The electrochemical properties of biochar serve to lower the corrosion potential of nZVI, improving electronic transfer capability and reactivity and promoting direct electron transfer for the degradation of TCE. In addition, the enhanced electrochemical properties also facilitate the reaction of nZVI with water and can promote the sustained generation of H. Generation of H played a key role in reductive dechlorination over BC-nZVIs, which was related to the properties of the biochar support. This study focuses on the role of H and electrochemical performance in TCE reductive dechlorination, and provides a theoretical foundation and experimental support for the practical application of BC-nZVIs.

摘要

直接电子转移以及原子氢(H)的参与被认为是高导电性碳负载的纳米零价铁(nZVI)促进还原脱氯的主要机制。目前仍不清楚H、比表面积和电化学特性如何精确地影响生物炭负载纳米零价铁(BC-nZVI)去除氯代烃污染物的活性。在本研究中,通过液相还原法制备了一系列BC-nZVI,并评估了比表面积和电化学性能对H生成和电子转移的贡献。从去除效率和最终降解产物方面评估了BC-nZVI对三氯乙烯(TCE)的脱氯机制。结果表明,与裸nZVI相比,BC-nZVI具有更高的比表面积和TCE降解效率。乙烷、乙烯和乙炔是TCE的主要降解产物。BC-nZVI比表面积的差异对TCE的去除没有显著影响,但电子转移和H的持续生成取决于催化剂的电化学特性。生物炭的电化学性质有助于降低nZVI的腐蚀电位,提高电子转移能力和反应活性,并促进TCE降解的直接电子转移。此外,增强的电化学性质还促进了nZVI与水的反应,并能促进H的持续生成。H的生成在BC-nZVI的还原脱氯中起关键作用,这与生物炭载体的性质有关。本研究聚焦于H和电化学性能在TCE还原脱氯中的作用,为BC-nZVI的实际应用提供了理论基础和实验支持。

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