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生物炭吸附位点对其磺胺甲恶唑吸附性能的影响。

Influence of adsorption sites of biochar on its adsorption performance for sulfamethoxazole.

作者信息

Li Yinxue, Wang Bin, Shang Hongru, Cao Yongna, Yang Chunhui, Hu Weijie, Feng Yujie, Yu Yanling

机构信息

School of Chemistry and Chemical Engineering, Harbin Institute of Technology, Harbin, 150001, People's Republic of China.

Key Laboratory of Advanced Technologies of Materials (Ministry of Education), School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu, 610031, China.

出版信息

Chemosphere. 2023 Jun;326:138408. doi: 10.1016/j.chemosphere.2023.138408. Epub 2023 Mar 14.

Abstract

In this study, the effects of various types of key adsorption sites on biochar were investigated on its adsorption capacity for sulfamethoxazole (SMX). The biochar obtained by carbonization of corncob at 800 °C (named CC800) was applied to the adsorption of SMX in aqueous environment. The adsorption of SMX by CC800 exhibited a "Three-stage downward adsorption ladder" characteristic in the whole pH range, which was attributed to the different mechanisms corresponding to different adsorption sites of CC800. The organic solvent method and heat treatment method restored the adsorption sites of CC800 after saturated adsorption. And the results revealed that the pore structure and aromatic structure under acidic conditions, and surface functional groups and pore structure under alkaline conditions were confirmed to be key SMX adsorption sites. The adsorption energies of each adsorption mechanism were calculated by density functional theory (DFT), and their order was (-)CAHB (-COO) > π-π EDA interaction > (-)CAHB (-O) > pore filling mechanism > π-π EDA interaction. Based on the above studies, the adsorption performance of biochar to SMX can be improved by targeted modification of its micropore structure, surface functional groups, and aromatic structures.

摘要

本研究考察了生物炭上各类关键吸附位点对其磺胺甲恶唑(SMX)吸附能力的影响。将在800℃下碳化玉米芯得到的生物炭(命名为CC800)用于水环境中SMX的吸附。CC800对SMX的吸附在整个pH范围内呈现出“三段式下降吸附阶梯”特征,这归因于CC800不同吸附位点对应的不同机制。有机溶剂法和热处理法在饱和吸附后恢复了CC800的吸附位点。结果表明,酸性条件下的孔结构和芳香结构以及碱性条件下的表面官能团和孔结构被确认为关键的SMX吸附位点。通过密度泛函理论(DFT)计算了各吸附机制的吸附能,其顺序为(-)CAHB(-COO)>π-π EDA相互作用>(-)CAHB(-O)>孔填充机制>π-π EDA相互作用。基于上述研究,通过对生物炭的微孔结构、表面官能团和芳香结构进行有针对性的改性,可以提高生物炭对SMX的吸附性能。

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