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首页> 外文期刊>Chemical Engineering Research & Design: Transactions of the Institution of Chemical Engineers >Fabricating a novel chitosan-based adsorbent with multifunctional synergistic effect for Cu(II) removal: Maleic anhydride as a connecting bridge
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Fabricating a novel chitosan-based adsorbent with multifunctional synergistic effect for Cu(II) removal: Maleic anhydride as a connecting bridge

机译:用多功能协同效应制造新的壳聚糖基吸附剂,用于Cu(II)去除:马来酸酐作为连接桥

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摘要

To improve the xanthogenic acidification efficiency of chitosan (CTS), a novel chitosan-based adsorbent (XMCTS) with strong chelating ability was prepared by using maleic anhydride as the connecting bridge for the first time. Some characterization methods such that scanning electron microscope, nuclear magnetic resonance spectroscopy, X-ray photoelectron spectroscopy, and thermogravimetric were employed to analysis the structure of copolymers, and verify the successful synthesis of XMCTS. Comparative study found that the introduction of maleic anhydride increased the graft rate and acid stability of XMCTS. Impact of dosage, pH, contact time, initial concentration, and temperature on adsorption performance were explored. Compared with CTS, XMCTS showed better adsorption performance, reaching a maximum of 201.43 mg/g at 40 C. The adsorption kinetics of XMCTS fitted well with the pseudo-second-order model, and the adsorption isotherm was well described by the Langmuir isotherm model. Adsorption thermodynamics indicated that the adsorption of Cu(II) was a spontaneous endothermic process. The analysis of adsorption mechanism indicated that the strong synergistic chelation and electrostatic attraction of the amino, carboxyl, hydroxyl and xanthate groups contributed to the adsorption of Cu(II) effectively. (C) 2020 Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
机译:为了提高壳聚糖(CTS)的棘突酸化效率,通过使用马来酸酐作为连接桥首次制备具有强螯合能力的新型壳聚糖基吸附剂(XMCT)。一些表征方法,使得扫描电子显微镜,核磁共振光谱,X射线光电子能谱和热重分析分析共聚物的结构,并验证XMCT的成功合成。比较研究发现,马来酸酐的引入增加了XMCT的接枝率和酸稳定性。探讨了剂量,pH,接触时间,初始浓度和温度对吸附性能的影响。与CTS相比,XMCT显示出更好的吸附性能,最多可达201.43mg / g在40℃下达到XMCTS的吸附动力学与伪二阶模型很好,并且Langmuir等温模型很好地描述了吸附等温线。吸附热力学表明Cu(II)的吸附是自发的吸热过程。吸附机制的分析表明,氨基,羧基,羟基和黄原酸盐基团的强协同螯合和静电吸引有助于有效吸附Cu(II)。 (c)2020化学工程师机构。 elsevier b.v出版。保留所有权利。

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