Effective removal of Pb (II) from wastewater by zinc-iron bimetallic oxide-modified walnut shell biochar: A combined experimental and DFT calculation approach.

IF 8 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Tao Chen, Guangzhu Cao, Yi Qiang, Yanfeng Lu, Ronggao Qin, Wan Xu, Yiming Xie, Ruoyu Mao
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Abstract

The modified walnut shell biochar (WBC) was prepared through zinc-iron bimetallic oxide modification (ZF@WBC) at 600 °C under oxygen-limited conditions in this study. Through adsorption experiments, characterization analyses, and density functional theory (DFT) calculations, the adsorption properties of ZF@WBC to Pb (II) were investigated and the mechanism underlying such adsorption was elucidated. Characterization results showed that the surface area (375.9709 m2/g) and total pore volume (0.205319 cm3/g) of ZF@WBC were significantly greater than those of walnut shell biochar. The maximum adsorption capacity of ZF@WBC for Pb (II) was found to be 104.26 mg/g, which is 2.57 times higher than that of WBC according to the adsorption experiments conducted. The observed adsorption behavior followed both the pseudo-second-order (PSO) kinetic model and Langmuir isothermal adsorption model, suggesting that chemisorption plays a major role in the absorption process. Based on SEM, XRD, XPS, FTIR characterizations along with DFT calculations performed in this study, it can be concluded that surface complexation, ion exchange, electrostatic attraction, physical absorption are among the main mechanisms responsible for absorption of Pb (II) by ZF@WBC. Furthermore, even in the presence of interfering ions at different concentrations, ZF@WBC exhibited a removal rate above 70% for Pb (II). Therefore, ZF@WBC has great potential as an effective absorbent for removing Pb (II) from wastewater, while also offering opportunities for biomass waste resource utilization.

锌铁双金属氧化物改性核桃壳生物炭有效去除废水中的铅 (II):实验与 DFT 计算相结合的方法。
本研究通过锌铁双金属氧化物改性(ZF@WBC),在 600 °C 的限氧条件下制备了改性核桃壳生物炭(WBC)。通过吸附实验、表征分析和密度泛函理论(DFT)计算,研究了 ZF@WBC 对铅(II)的吸附特性,并阐明了其吸附机理。表征结果表明,ZF@WBC 的比表面积(375.9709 m2/g)和总孔体积(0.205319 cm3/g)明显大于核桃壳生物炭。根据吸附实验发现,ZF@WBC 对铅(II)的最大吸附容量为 104.26 mg/g,是核桃壳生物炭的 2.57 倍。所观察到的吸附行为同时遵循了伪二阶(PSO)动力学模型和 Langmuir 等温吸附模型,表明化学吸附在吸附过程中发挥了主要作用。根据本研究中进行的 SEM、XRD、XPS、FTIR 表征和 DFT 计算,可以得出结论:表面络合、离子交换、静电吸引和物理吸收是 ZF@WBC 吸收铅 (II) 的主要机制。此外,即使存在不同浓度的干扰离子,ZF@WBC 对铅(II)的去除率也超过了 70%。因此,ZF@WBC 作为去除废水中铅(II)的有效吸收剂具有巨大潜力,同时也为生物质废物资源化提供了机会。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Environmental Management
Journal of Environmental Management 环境科学-环境科学
CiteScore
13.70
自引率
5.70%
发文量
2477
审稿时长
84 days
期刊介绍: The Journal of Environmental Management is a journal for the publication of peer reviewed, original research for all aspects of management and the managed use of the environment, both natural and man-made.Critical review articles are also welcome; submission of these is strongly encouraged.
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