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基于羧甲基纤维素的离子印迹树脂的合成与表征及其对 UO₂²⁺的选择性去除。

Synthesis and characterization of ion-imprinted resin based on carboxymethyl cellulose for selective removal of UO₂²⁺.

机构信息

Chemistry Department, Faculty of Science, Mansoura University, Mansoura, Egypt.

出版信息

Carbohydr Polym. 2013 Sep 12;97(2):743-52. doi: 10.1016/j.carbpol.2013.05.062. Epub 2013 Jun 3.

Abstract

In this work, the surface ion-imprinting technique was employed for the preparation of surface ion-imprinted chelating microspheres resin based on modified salicylaldehyde-carboxymethyl cellulose (U-CMC-SAL) in presence of uranyl ions as a template and formaldehyde as a cross-linker. Various instrumental techniques such as elemental analysis, scanning electron microscope (SEM), FTIR and X-ray diffraction spectra were utilized for full characterization of the prepared polymeric samples. The prepared resin exhibited a higher capability for selective removal of UO₂²⁺ when compared to the non-imprinted resin (N-CMC-SAL). Also, different important parameters such as pH, temperature, time and initial metal ion concentration were examined in order to evaluate the optimum condition for the adsorption process. The results indicated that pH 5 was the best for the UO₂²⁺ uptake, in addition, the adsorption was exothermic in nature, follows the second-order kinetics and the adsorption isotherm showed the best fit with Langmuir isotherm model with maximum adsorption capacity of 180 ± 1 and 97 ± 1 mg/g for both U-CMC-SAL and N-CMC-SAL respectively. Desorption and regeneration were carried out using 0.5M HNO3 solution and the results confirmed that the resin keeps about 92% of its original efficiency after five consecutive adsorption-desorption operations.

摘要

在这项工作中,采用表面离子印迹技术,以铀酰离子为模板,甲醛为交联剂,在改性水杨醛-羧甲基纤维素(U-CMC-SAL)存在的情况下制备表面离子印迹螯合微球树脂。利用元素分析、扫描电子显微镜(SEM)、FTIR 和 X 射线衍射光谱等各种仪器技术对制备的聚合物样品进行了全面表征。与非印迹树脂(N-CMC-SAL)相比,制备的树脂在选择性去除 UO₂²⁺方面表现出更高的能力。此外,还研究了不同的重要参数,如 pH 值、温度、时间和初始金属离子浓度,以评估吸附过程的最佳条件。结果表明,pH 值为 5 时是 UO₂²⁺摄取的最佳条件,此外,吸附是放热的,遵循二级动力学,吸附等温线与 Langmuir 等温线模型拟合最好,最大吸附容量分别为 180±1 和 97±1mg/g 对于 U-CMC-SAL 和 N-CMC-SAL 。使用 0.5M HNO3 溶液进行解吸和再生,结果证实,树脂在连续五次吸附-解吸操作后仍保持约 92%的原始效率。

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