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负载纳米零价铁的生物炭对三价锑的吸附增强:性能、机制及可持续性

Enhanced adsorption for trivalent antimony by nano-zero-valent iron-loaded biochar: performance, mechanism, and sustainability.

作者信息

Ma Siyi, Ji Jianghao, Mou Yizhen, Shen Xueyi, Xu Siqin

机构信息

Key Laboratory of Karst Georesources and Environment, Ministry of Education, Guizhou University, GuizhouGuiyang, 550025, China.

College of Resources and Environmental Engineering, Guizhou University, GuizhouGuiyang, 550025, China.

出版信息

Environ Sci Pollut Res Int. 2023 Nov;30(52):112536-112547. doi: 10.1007/s11356-023-30299-w. Epub 2023 Oct 13.

Abstract

The discharge of tailing leachate and metallurgical wastewater has led to an increasing trend of water pollution. In this study, nZVI-modified low-temperature biochar was used to adsorb Sb(III) from water. The adsorption capacity and speed of nZVI-BC were better than those of BC, and the best adsorption effect was observed for 4nZVI-BC, with 93.60 mg·g maximum adsorptive capacity, which was 208.61% higher than the original BC. The Langmuir and Temkin models were well fitted (R ≥ 0.99), and PSO was more in line with the 4nZVI-BC adsorption process, indicating that the adsorption was a monolayer physico-chemical adsorption. The combination of XRD, FTIR, and XPS characterization demonstrated that the adsorption mechanism predominantly included redox reactions, complexation, and electrostatic interactions. The thermodynamic results demonstrated that 4nZVI-BC adsorption on Sb(III) was a spontaneous endothermic process. Additionally, the order of the influence of interfering ions on 4nZVI-BC was CO  > HPO  > SO  > Cl. After three repeated uses and adsorption-desorption, the adsorption ratio of Sb(III) by 4nZVI-BC was still as high as 90% and 65%, respectively. This study provides a theoretical reference for the exploration and development of Sb(III) removal technologies for aquatic environments.

摘要

尾矿渗滤液和冶金废水的排放导致水污染呈上升趋势。本研究采用纳米零价铁改性低温生物炭从水中吸附Sb(III)。纳米零价铁-生物炭的吸附容量和速度优于生物炭,4纳米零价铁-生物炭的吸附效果最佳,最大吸附容量为93.60 mg·g,比原生物炭高208.61%。Langmuir和Temkin模型拟合良好(R≥0.99),粒子群算法更符合4纳米零价铁-生物炭的吸附过程,表明吸附为单层物理化学吸附。XRD、FTIR和XPS表征结果表明,吸附机制主要包括氧化还原反应、络合作用和静电相互作用。热力学结果表明,4纳米零价铁-生物炭对Sb(III)的吸附是一个自发吸热过程。此外,干扰离子对4纳米零价铁-生物炭影响的顺序为CO >HPO >SO >Cl。经过三次重复使用及吸附-解吸后,4纳米零价铁-生物炭对Sb(III)的吸附率仍分别高达90%和65%。本研究为水环境中Sb(III)去除技术的探索和开发提供了理论参考。

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