甘蔗渣修饰生物炭去除水中砷(III)的研究

IF 2.3 4区 环境科学与生态学 Q3 ENGINEERING, CHEMICAL
Huy Hoang Do, Manh Ha Nguyen, Nguyet Thi Trieu, Anh Son Pham, Thi Hai Nguyen, Tuan Nguyen Quoc
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引用次数: 0

摘要

水中的砷污染对人类健康构成重大风险,特别是由于亚砷酸盐(砷(III))的毒性和流动性。在这项研究中,成功地合成了修饰在甘蔗渣(ZnFe2O4@Biochar)生物炭上的ZnFe2O4,以有效地去除水溶液中的As(III)。利用扫描电子显微镜(SEM)、能量色散x射线(EDX)、傅里叶变换红外光谱(FTIR)、x射线衍射(XRD)和磁化性能对合成材料进行了表征。XRD和FTIR结果证实了ZnFe2O4在生物炭上的成功掺入,而SEM和EDX则显示了具有均匀分布的纳米颗粒的高度多孔结构。该复合材料还表现出高磁化分离性能。通过间歇吸附实验,考察了接触时间、温度和pH对吸附效率的影响。吸附动力学遵循准二级模型,表明化学吸附是去除as (III)的主要机制。Freundlich模型最适合描述吸附等温线,表明其表面非均相吸附,最大吸附量(qmax)为1348.2 μg/g。吸附过程为吸热吸附,温度升高可提高吸附效率。去除As(III)的最佳pH值为3,其中静电相互作用和化学键最有利。该研究表明ZnFe2O4@Biochar是一种高效、可持续、经济的As(III)去除吸附剂,可能是水处理系统中应用的重要潜在材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Removal of As(III) in water using ZnFe2O4 decorated biochar derived from bagasse

Removal of As(III) in water using ZnFe2O4 decorated biochar derived from bagasse

Removal of As(III) in water using ZnFe2O4 decorated biochar derived from bagasse

Removal of As(III) in water using ZnFe2O4 decorated biochar derived from bagasse

Arsenic (As) contamination in water poses a significant risk to human health, particularly due to the toxic and mobile nature of arsenite (As(III)). In this study, ZnFe2O4 decorated onto biochar derived from bagasse (ZnFe2O4@Biochar) was successfully synthesized for efficient removal of As(III) from aqueous solutions. The synthesized material was characterized using scanning electron microscopy (SEM), energy-dispersive X-ray (EDX), Fourier transform infrared spectroscopy (FTIR), X-ray diffraction (XRD), and magnetization. The XRD and FTIR results confirmed the successful incorporation of ZnFe2O4 onto biochar, while SEM and EDX revealed a highly porous structure with evenly distributed nanoparticles. The composite also showed high magnetization separation. Batch adsorption experiments were conducted to evaluate the effects of contact time, temperature, and pH on adsorption efficiency. The adsorption kinetics followed a pseudo-second-order model, indicating chemisorption as the primary mechanism for As(III) removal. Adsorption isotherms were best described by the Freundlich model, suggesting heterogeneous surface adsorption with a maximum adsorption capacity (qmax) of 1348.2 μg/g. The adsorption process was found to be endothermic, with increasing temperature enhancing adsorption efficiency. The optimum pH for As(III) removal was 3, where electrostatic interactions and chemical bonding were most favorable. This study showed that ZnFe2O4@Biochar is a highly efficient, sustainable, and cost-effective adsorbent for As(III) removal and could be a significant potential material for application in water treatment systems.

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来源期刊
Environmental Progress & Sustainable Energy
Environmental Progress & Sustainable Energy 环境科学-工程:化工
CiteScore
5.00
自引率
3.60%
发文量
231
审稿时长
4.3 months
期刊介绍: Environmental Progress , a quarterly publication of the American Institute of Chemical Engineers, reports on critical issues like remediation and treatment of solid or aqueous wastes, air pollution, sustainability, and sustainable energy. Each issue helps chemical engineers (and those in related fields) stay on top of technological advances in all areas associated with the environment through feature articles, updates, book and software reviews, and editorials.
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