Hamza Mohammed F, Aly Mohsen M, Abdel-Rahman Adel A-H, Ramadan Samar, Raslan Heba, Wang Shengye, Vincent Thierry, Guibal Eric
Nuclear Materials Authority, 530 El Maadi, Cairo, Egypt.
Ecole des Mines d'Alès, Centre des Matériaux des Mines d'Alès, 6 Avenue de Clavières, F-30319 Ales CEDEX, France.
Materials (Basel). 2017 May 16;10(5):539. doi: 10.3390/ma10050539.
A new magnetic functionalized derivative of chitosan is synthesized and characterized for the sorption of metal ions (environmental applications and metal valorization). The chemical modification of the glycine derivative of chitosan consists of: activation of the magnetic support with epichlorohydrin, followed by reaction with either glycine to produce the reference material (i.e., Gly sorbent) or glycine ester hydrochloride, followed by hydrazinolysis to synthesize the hydrazide functionalized sorbent (i.e., HGly sorbent). The materials are characterized by titration, elemental analysis, FTIR analysis (Fourrier-transform infrared spectrometry), TGA analysis (thermogravimetric analysis) and with SEM-EDX (scanning electron microscopy coupled to energy dispersive X-ray analysis). The sorption performances for U(VI), Cu(II), and Zn(II) are tested in batch systems. The sorption performances are compared for Gly and HGly taking into account the effect of pH, the uptake kinetics (fitted by the pseudo-second order rate equation), and the sorption isotherms (described by the Langmuir and the Sips equations). The sorption capacities of the modified sorbent reach up to 1.14 mmol U g, 1.69 mmol Cu g, and 0.85 mmol Zn g. In multi-metal solutions of equimolar concentration, the chemical modification changes the preferences for given metal ions. Metal ions are desorbed using 0.2 M HCl solutions and the sorbents are re-used for five cycles of sorption/desorption without significant loss in performances.
合成了一种新型的壳聚糖磁性功能化衍生物,并对其吸附金属离子的性能进行了表征(用于环境应用和金属回收)。壳聚糖甘氨酸衍生物的化学改性包括:用环氧氯丙烷活化磁性载体,然后与甘氨酸反应生成参考材料(即甘氨酸吸附剂)或甘氨酸酯盐酸盐,接着进行肼解以合成酰肼功能化吸附剂(即HGly吸附剂)。通过滴定、元素分析、傅里叶变换红外光谱(FTIR)分析、热重分析(TGA)以及扫描电子显微镜-能谱分析(SEM-EDX)对材料进行表征。在间歇系统中测试了对U(VI)、Cu(II)和Zn(II)的吸附性能。考虑到pH值的影响、吸附动力学(用拟二级速率方程拟合)以及吸附等温线(用朗缪尔方程和Sips方程描述),比较了甘氨酸吸附剂和HGly吸附剂的吸附性能。改性吸附剂对U、Cu和Zn的吸附容量分别达到1.14 mmol/g、1.69 mmol/g和0.85 mmol/g。在等摩尔浓度的多金属溶液中,化学改性改变了对特定金属离子的选择性。用0.2 M HCl溶液解吸金属离子,吸附剂可重复使用五个吸附/解吸循环,性能无明显损失。