Department of Chemical Engineering, Quchan University of Technology, Quchan, Iran.
Kärsa Ltd, A.I.Virtasen aukio, 00560 Helsinki, Finland.
Int J Biol Macromol. 2020 Dec 1;164:3621-3631. doi: 10.1016/j.ijbiomac.2020.08.207. Epub 2020 Aug 29.
The present paper describes the synthesis of a novel magnetic chitosan (CCF), in which the carbon-FeO core-shell nanoparticles play the role of magnetic part. The structure, property and morphology of the magnetic CCF were characterized by FT-IR, XRD, EDAX, SEM and BET techniques. Its adsorption performance was investigated for the removal of methyl orange from aqueous solutions by varying experimental conditions. The results showed the fast adsorption of methyl orange in wide pH range of 3-11 and the maximum adsorption capacity was found to be 425 mg g at 45 °C. The results of adsorption kinetics indicated that the adsorption mechanism was better described by the pseudo-second-order equation, whereas pore diffusion is the rate-controlling of adsorption kinetics. Furthermore, among different isotherm models, Langmuir and Sips isotherm models fitted well the equilibrium experimental data at different temperatures revealing the surface heterogeneity of the adsorbents. The adsorbent exhibited high adsorption performance, compared to the some other chitosan adsorbents reported in literatures.
本文描述了一种新型磁性壳聚糖(CCF)的合成,其中碳 -FeO 核壳纳米粒子作为磁性部分。采用 FT-IR、XRD、EDAX、SEM 和 BET 技术对磁性 CCF 的结构、性能和形态进行了表征。通过改变实验条件,研究了其对水溶液中甲基橙的吸附性能。结果表明,甲基橙在宽 pH 范围 3-11 内的吸附速度较快,在 45°C 时最大吸附容量为 425mg g。吸附动力学结果表明,吸附机制更符合拟二级方程,而孔扩散是吸附动力学的速率控制步骤。此外,在不同的等温模型中,Langmuir 和 Sips 等温模型在不同温度下很好地拟合了平衡实验数据,表明吸附剂表面具有不均匀性。与文献中报道的一些其他壳聚糖吸附剂相比,该吸附剂表现出了较高的吸附性能。