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利用橡胶榕树叶合成磁性活性炭,用于从水溶液中吸附去除四环素。

Magnetic activated carbon synthesized using rubber fig tree leaves for adsorptive removal of tetracycline from aqueous solutions.

机构信息

Department of Chemical Engineering, Manipal Institute of Technology, Manipal Academy of Higher Education, Manipal, Karnataka, 576104, India.

Department of Biotechnology, Manipal Institute of Technology, Manipal Academy of Higher Education, Manipal, Karnataka, 576104, India.

出版信息

Environ Res. 2023 Jan 1;216(Pt 3):114775. doi: 10.1016/j.envres.2022.114775. Epub 2022 Nov 9.

Abstract

The current study emphasizes the activated carbon fabrication from rubber fig leaves, the establishment of its composite with iron oxide nanoparticles (RFAC@FeO), and its relevance in the adsorptive elimination of tetracycline. The physical and functional properties of RFAC@FeO nanocomposite were uncovered by multiple approaches. Elemental analysis portrayed the existence of carbon, oxygen, and iron, while FESEM analysis revealed that FeO nanoparticle agglomerates were entrenched in the activated carbon matrix rendering it a rough abrasive texture. FT-IR analysis reported the presence of functional groups attributing to CC, -OH, crystalline iron oxide, and Fe-O stretching vibrations, and XRD corroborated graphitic crystalline structure, oxygenated functional groups attached to carbon accompanied by crystalline plane corresponding to FeO nanoparticles. XPS spectra depicted signature peaks for C, O, and Fe, while VSM studies designated its superparamagnetic nature. The high surface area (662.73 m/g), pore size (3.12 nm), and mesoporous nature of RFAC@FeO make it apt for the adsorption of pollutants from contaminated samples. The adsorption of tetracycline (50 ppm) by RFAC@FeO was maximum at pH 4.0. As the nanocomposite dosage and stirring speed increased to 2.0 g/L and 150 rpm, maximum adsorption was observed due to more active binding sites and improved mixing. Freundlich isotherm along with pseudo-second-order model well described adsorption process divulging that tetracycline was adsorbed onto RFAC@FeO composite in multi-layers by chemisorption. Thermodynamic analysis signified negative values for ΔG°, while positive values for ΔH° and ΔS were obtained, indicating spontaneous feasible endothermic adsorption.

摘要

本研究强调了从橡胶 fig 叶中制备活性炭,建立其与氧化铁纳米粒子(RFAC@FeO)的复合材料,并将其应用于四环素的吸附去除。通过多种方法揭示了 RFAC@FeO 纳米复合材料的物理和功能特性。元素分析表明存在碳、氧和铁,而 FESEM 分析表明 FeO 纳米颗粒聚集体嵌入活性炭基质中,使其具有粗糙的研磨纹理。FT-IR 分析报告了存在归因于 CC、-OH、结晶氧化铁和 Fe-O 伸缩振动的官能团,而 XRD 证实了石墨结晶结构、附着在碳上的含氧官能团以及对应于 FeO 纳米颗粒的结晶平面。XPS 光谱描绘了 C、O 和 Fe 的特征峰,而 VSM 研究指定了其超顺磁性质。RFAC@FeO 的高表面积(662.73 m/g)、孔径(3.12 nm)和中孔性质使其适合从污染样品中吸附污染物。在 pH 4.0 时,RFAC@FeO 对四环素(50 ppm)的吸附最大。随着纳米复合材料剂量和搅拌速度增加到 2.0 g/L 和 150 rpm,观察到最大吸附,这是由于更多的活性结合位点和改善的混合。Freundlich 等温线和伪二级模型很好地描述了吸附过程,表明四环素通过化学吸附在 RFAC@FeO 复合材料上多层吸附。热力学分析表明 ΔG°为负值,而 ΔH°和 ΔS 为正值,表明是自发可行的吸热吸附。

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