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使用CTS@nZVI修饰的麦秸衍生多孔碳提高水溶液中六价铬的吸附性

Enhanced Adsorptivity of Hexavalent Chromium in Aqueous Solutions Using CTS@nZVI Modified Wheat Straw-Derived Porous Carbon.

作者信息

Deng Tiantian, Li Hansheng, Ding Su, Chen Feng, Fu Jingbao, Zhao Junwei

机构信息

School of Environmental and Biological Engineering, Henan University of Engineering, Zhengzhou 451191, China.

Faculty of Health Sciences, University of Technology MARA, Puncak Alam Campus, Puncak Alam 42300, Malaysia.

出版信息

Nanomaterials (Basel). 2024 Jun 3;14(11):973. doi: 10.3390/nano14110973.

Abstract

Using KOH-modified wheat straw as the precursor, wheat straw biochar was produced through carbonization at 500 °C. Subsequently, a synthetic material containing nano-zero-valent iron (nZVI) was prepared via liquid phase reduction (nZVI-WSPC). To enhance its properties, chitosan (CTS) was used by crosslinking to form the new adsorbent named CTS@nZVI-WSPC. The impact of CTS on parameters such as mass ratio, initial pH value, and adsorbent dosage on the adsorption efficiency of Cr(VI) in solution was investigated through one-factor experiments. Isotherm adsorption and thermodynamic analysis demonstrated that the adsorption of Cr(VI) by CTS@nZVI-WSPC conforms to the Langmuir model, with a maximum adsorption capacity of 147.93 mg/g, and the adsorption process is endothermic. Kinetic analysis revealed that the adsorption process follows a pseudo-second-order kinetic model. The adsorption mechanism, as elucidated by SEM, FTIR, XPS, and XRD, suggests that the process may involve multiple mechanisms, including pore adsorption, electrostatic adsorption, chemical reduction, and surface chelation. The adsorption capacity of Cr(VI) by CTS@nZVI-WSPC remains high after five cycles. The adsorbent is simple to operate, economical, efficient, and reusable, making it a promising candidate for the treatment of Cr(VI) in water.

摘要

以氢氧化钾改性麦秸为前驱体,通过在500℃碳化制备了麦秸生物炭。随后,通过液相还原法制备了含纳米零价铁(nZVI)的合成材料(nZVI-WSPC)。为提高其性能,通过交联使用壳聚糖(CTS)形成了新型吸附剂CTS@nZVI-WSPC。通过单因素实验研究了CTS对质量比、初始pH值和吸附剂用量等参数对溶液中Cr(VI)吸附效率的影响。等温吸附和热力学分析表明,CTS@nZVI-WSPC对Cr(VI)的吸附符合Langmuir模型,最大吸附容量为147.93 mg/g,且吸附过程为吸热过程。动力学分析表明,吸附过程遵循准二级动力学模型。通过扫描电子显微镜(SEM)、傅里叶变换红外光谱(FTIR)、X射线光电子能谱(XPS)和X射线衍射(XRD)阐明的吸附机理表明,该过程可能涉及多种机制,包括孔隙吸附、静电吸附、化学还原和表面螯合。CTS@nZVI-WSPC对Cr(VI)的吸附容量在五个循环后仍保持较高水平。该吸附剂操作简单、经济高效且可重复使用,是处理水中Cr(VI)的有前途的候选材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b4d9/11173464/5155df236e34/nanomaterials-14-00973-g001.jpg

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