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Chromium (VI) ion adsorption by grafted cross-linked chitosan beads in aqueous solution - a mathematical and statistical modeling study

机译:接枝交联壳聚糖微珠在水溶液中吸附铬(VI)的数学和统计模型研究

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Chitosan outstanding qualities and efficient way of binding metal ions even to near zero concentration is the major reason for special attention. Modification of chitosan allows the polymer to be applied in numerous field of research. Depending on the modification techniques, chitosan possesses increased adsorption capacity. In this study chitosan beads (CS) were formulated from chitosan flakes, the beads were cross-linked with glutaraldehyde and thereafter grafted with ethyldiamine tetraacetic acid. The stability and amine concentration of the beads were determined. The chemical functionalities of the beads were obtained by Fourier transform infrared spectroscopy, X-ray diffraction and thermogravimetric analysis (TGA). However, in the adsorption studies with Cr(VI), the number of runs in the experiment was obtained by response surface methodology (RSM), and the maximum adsorption capacity (Q(m)) from each run was determined from the Langmuir model. The results of the experiment showed that the non-modified beads were soluble at pH 1-4 and insoluble at pH 5, while the modified beads were insoluble at pH 1-6. The amine concentration of CS, CCS and grafted cross-linked chitosan beads (GCCS) were 4.4, 3.8 and 5.0 mmol/g, respectively. The point of zero charge (pH(PZC)) of GCCS was found to be 4.4. The quadratic model was significant and adequate in describing the experimental data. The difference between experimental and predicted Q(m) was negligible. From the design matrix and results, increased Q(m) was achieved at pH 5, contact time 70 min, temperature 45 degrees C, adsorbent dosage 5 g and initial concentration 70 mg/l. The desorption of the beads loaded with Cr(VI) was successful with 0.5 M HCl eluant and contact time of 180 min, leading to cost minimization.
机译:壳聚糖出色的质量和有效的结合金属离子的方法,即使浓度接近零也是引起特别关注的主要原因。壳聚糖的改性使得该聚合物可用于许多研究领域。取决于改性技术,壳聚糖具有增加的吸附能力。在这项研究中,由壳聚糖薄片配制了壳聚糖珠(CS),珠与戊二醛交联,然后接枝乙二胺四乙酸。测定珠的稳定性和胺浓度。珠的化学功能通过傅里叶变换红外光谱,X射线衍射和热重分析(TGA)获得。但是,在Cr(VI)吸附研究中,实验的运行次数是通过响应表面方法(RSM)获得的,并且每次运行的最大吸附容量(Q(m))均由Langmuir模型确定。实验结果表明,未修饰的珠在pH 1-4下可溶而在pH 5不溶,而修饰的珠在pH 1-6下不溶。 CS,CCS和接枝的交联壳聚糖珠(GCCS)的胺浓度分别为4.4、3.8和5.0 mmol / g。发现GCCS的零电荷点(pH(PZC))为4.4。二次模型在描述实验数据方面具有重要意义。实验和预测Q(m)之间的差异可以忽略不计。根据设计矩阵和结果,在pH 5,接触时间70分钟,温度45摄氏度,吸附剂剂量5 g和初始浓度70 mg / l时,Q(m)增大。用0.5 M HCl洗脱液和接触时间为180分钟成功解吸了含Cr(VI)的珠子,从而将成本降至最低。

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