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使用壳聚糖海绵稳定化的碳纳米管去除化肥工业废水中的氟化物。

Removal of fluoride from fertilizer industry effluent using carbon nanotubes stabilized in chitosan sponge.

机构信息

School of Chemistry and Food, Federal University of Rio Grande - FURG, Rio Grande, RS, Brazil.

Department of Physics, Federal University of Santa Maria-UFSM, Santa Maria, RS, Brazil.

出版信息

J Hazard Mater. 2020 Apr 15;388:122042. doi: 10.1016/j.jhazmat.2020.122042. Epub 2020 Jan 10.

Abstract

Adsorption of fluoride from fertilizer industry effluent using carbon nanotubes stabilized in chitosan sponge as adsorbent was evaluated. The effluent was produced in the washing of acid gases during the reaction in fertilizer production and all assays were performed using this hazardous material. Adsorbent characterization and ions interactions were elucidated from differential scanning calorimetry, thermal gravimetric analyses, X-ray diffraction, scanning electron microscopy dispersive energy X-ray spectroscopy, atomic force microscopy and X-ray photoelectron spectroscopy. The effluent presented pH 3 and its value not changed in the adsorption assays, maintaining the conditions of the process. The kinetics assays of fluoride from industry effluent were performed in different stirring rates from 100 to 300 rpm. It was observed that adsorption was initially fast reaching the equilibrium at 300 rpm in 20 min. The adsorption capacity was around 975.4 mg g, showing the potential of the hybrid material to remove fluoride from a real matrix. The high adsorption capacity was attributed to the chitosan functional groups and the high interaction area promoted by sponge form and the carbon nanotube. Reuse and regeneration of the CNT-CS were investigated and 5 cycles were obtained. The adsorption capacity kept similar values in all cycles.

摘要

采用壳聚糖海绵稳定的碳纳米管作为吸附剂来评估从肥料工业废水中吸附氟化物。该废水是在肥料生产过程中酸气洗涤过程中产生的,所有实验均使用这种危险材料进行。通过差示扫描量热法、热重分析、X 射线衍射、扫描电子显微镜能谱分析、原子力显微镜和 X 射线光电子能谱对吸附剂的特性和离子相互作用进行了阐明。废水的 pH 值为 3,在吸附实验中没有变化,保持了工艺条件。在不同的搅拌速率(100 至 300 rpm)下进行了来自工业废水的氟化物的动力学实验。结果表明,吸附反应初始速度很快,在 300 rpm 下 20 min 内达到平衡。吸附容量约为 975.4 mg/g,表明该杂化材料具有从实际基质中去除氟化物的潜力。高吸附容量归因于壳聚糖的官能团以及海绵形态和碳纳米管所促进的高相互作用面积。对 CNT-CS 的重复使用和再生进行了研究,得到了 5 个循环。在所有循环中,吸附容量保持相似的值。

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