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Chitosan Grafted with Biobased 5-Hydroxymethyl-Furfural as Adsorbent for Copper and Cadmium Ions Removal

机译:壳聚糖接枝生物基5-羟甲基糠醛作为吸附剂去除铜和镉离子

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摘要

This work investigates the application of 5-hydroxymethyl-furfural (HMF) as a grafting agent to chitosan (CS). The material produced was further modified by cross-linking. Three different derivatives were tested with molecular ratios CS/HMF of 1:1 (CS-HMF1), 2:1 (CS-HMF2) and 10:1 mol/mol (CS-HMF3)) to remove Cu and Cd from aqueous solutions. CS-HMF derivatives were characterized both before, and after, metal ions adsorption by using scanning electron microscopy (SEM), as well as Fourier-transform infrared (FTIR) spectroscopy thermogravimetric analysis (TGA), and X-Ray diffraction analysis (XRD). The CS-HMF derivatives were tested at pH = 5 and showed higher adsorption capacity with the increase of temperature. Also, the equilibrium data were fitted to Langmuir (best fitting) and Freundlich model, while the kinetic data to pseudo-first (best fitting) and pseudo-second order equations. The Langmuir model fitted better (higher R ) the equilibrium data than the Freundlich equation. By increasing the HMF grafting from 130% (CS-HMF1) to 310% (CS-HMF3), an increase of 24% (26 m/g) was observed for Cu adsorption and 19% (20 mg/g) for Cd . By increasing from = 25 to 65 °C, an increase of the adsorption capacity (metal uptake) was observed. Ten reuse cycles were successfully carried out without significant loss of adsorption ability. The reuse potential was higher of Cd , but more stable desorption reuse ability during all cycles for Cu .
机译:这项工作研究了5-羟甲基糠醛(HMF)作为接枝剂在壳聚糖(CS)中的应用。产生的材料通过交联进一步改性。测试了三种不同的衍生物,其分子比CS / HMF为1:1(CS-HMF1),2:1(CS-HMF2)和10:1 mol / mol(CS-HMF3)),以从水溶液中去除Cu和Cd 。 CS-HMF衍生物通过扫描电子显微镜(SEM)以及傅里叶变换红外(FTIR)光谱热重分析(TGA)和X射线衍射分析(XRD)进行金属离子吸附前后的表征。 CS-HMF衍生物在pH = 5时进行测试,并随着温度的升高显示出更高的吸附能力。同样,平衡数据拟合到Langmuir(最佳拟合)和Freundlich模型,而动力学数据拟合到伪一阶(最佳拟合)和伪二阶方程。与Freundlich方程相比,Langmuir模型拟合得更好(R更高)。通过将HMF接枝率从130%(CS-HMF1)增加到310%(CS-HMF3),Cu吸附量增加了24%(26 m / g),Cd吸附量增加了19%(20 mg / g)。通过从25℃升至65℃,观察到吸附容量(金属吸收)增加。成功进行了十次重复使用循环,吸附能力没有明显下降。 Cd的再利用潜力较高,但在所有循环中对Cu的解吸再利用能力都比较稳定。

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