Moussout Hamou, Ahlafi Hammou, Aazza Mustapha, Zegaoui Omar, El Akili Charaf
Laboratory of Chemistry Biology Applied to the Environment, Faculty of Sciences, Moulay Ismaïl University, BP 11201-Zitoune, Meknès 50060, Morocco E-mail:
Laboratory of Mechanics Energetics and Materials, Ecole Nationale Supérieure d'Arts et Métiers, Moulay Ismaïl University, Meknes, Morocco.
Water Sci Technol. 2016;73(9):2199-210. doi: 10.2166/wst.2016.075.
Chitosan (CS) and nanocomposite 5%bentonite/chitosan (5%Bt/CS) prepared from the natural biopolymer CS were tested to remove Cu(II) ions using a batch adsorption experiment at various temperatures (25, 35 and 45°C). X-ray diffraction, Fourier transform infrared spectroscopy, and thermogravimetric analysis/differential thermal analysis (TGA/DTA) were used in CS and the nanocomposite characterisation. This confirmed the exfoliation of bentonite (Bt) to form the nanocomposite. The adsorption kinetics of copper on both solids was found to follow a pseudo-second-order law at each studied temperature. The Cu(II) adsorption capacity increased as the temperature increased from 25 to 45°C for nanocomposite adsorbent but slightly increased for CS. The data were confronted to the nonlinear Langmuir, Freundlich and Redlich-Peterson models. It was found that the experimental data fitted very well the Langmuir isotherm over the whole temperature and concentration ranges. The maximum monolayer adsorption capacity for the Cu(II) was 404-422 mg/g for CS and 282-337 mg/g for 5%Bt/CS at 25-45°C. The thermodynamic study showed that the adsorption process was spontaneous and endothermic. The complexation of Cu(II) with NH(2) and C = O groups as active sites was found to be the main mechanism in the adsorption processes.
壳聚糖(CS)以及由天然生物聚合物CS制备的5%膨润土/壳聚糖纳米复合材料(5%Bt/CS),通过在不同温度(25、35和45°C)下进行的批量吸附实验来测试其对铜离子(Cu(II))的去除效果。利用X射线衍射、傅里叶变换红外光谱以及热重分析/差示热分析(TGA/DTA)对CS和纳米复合材料进行表征。这证实了膨润土(Bt)的剥离从而形成了纳米复合材料。发现在每个研究温度下,铜在这两种固体上的吸附动力学均遵循准二级定律。对于纳米复合吸附剂,随着温度从25°C升高到45°C,Cu(II)的吸附容量增加,而对于CS,其吸附容量略有增加。将数据与非线性朗缪尔、弗伦德里希和雷德利希 - 彼得森模型进行对比。结果发现在整个温度和浓度范围内,实验数据都非常符合朗缪尔等温线。在25 - 45°C时,CS对Cu(II)的最大单层吸附容量为404 - 422 mg/g,5%Bt/CS对Cu(II)的最大单层吸附容量为282 - 337 mg/g。热力学研究表明吸附过程是自发的且吸热的。发现Cu(II)与作为活性位点的NH(2)和C = O基团的络合是吸附过程中的主要机制。