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Optimization and Adsorption Behavior of Nanostructured NiFe_2O_4/ Poly AMPS Grafted Biopolymer

机译:纳米结构NiFe_2O_4 / POY AMPS接枝生物聚合物的优化和吸附行为

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By grafting polysaccharides backbone of biopolymer (alginate) on synthetic polymer nanocomposite chains (PAMPS/NiFe2O4) to remove methylene blue and toxic heavy metal (Cu2+) from aqueous solutions, a superadsorbent was prepared. Using FTIR, TGA, X-ray diffraction, TEM, and SEM studied the structures of native and grafted alginate hydrogels. Adsorption experiments have been optimized using RSM/CCD response surface methodology and analyzed as a pH solution and adsorbent dose function. The initial concentrations of metal and dye, temperature, and contact time were also discussed and isothermal, thermodynamic adsorption, and kinetic theoretical constants were calculated as well. Results revealed that alginate grafted nanocomposite PAMPS/NiFe2O4 enhanced the proportion of methylene blue (MB) color removal up to (98.32%) and metal ion discharge (83%). The optimum cationic dye MB and Cu2+ ions adsorption capability were acquired at pH (5.75 and 4) and temperature (318.15 K) respectively. For both MB dye and Cu2+ ions, the pseudo-2nd-order model has effectively defined the adsorption kinetics and the Freundlich model could precisely explain adsorption isotherms than the Cu2+ Langmuir adsorption model, while the adsorption of MB dye showed a greater presence for both Freundlich and Langmuir designs. MB dye and Cu2+ ions have recorded the highest adsorption capacity of 275.6 and 22.81 mg/g respectively; indicating an efficient separation of adsorbent from aqueous solutions for both cationic dyes and toxic heavy metals.[GRAPHICS].
机译:通过在合成聚合物纳米复合链(PAMPS / NIFE2O4)上的生物聚合物(藻酸盐)的多糖骨架以从水溶液中除去亚甲基蓝色和有毒重金属(Cu2 +),制备过吸水剂。使用FTIR,TGA,X射线衍射,TEM和SEM研究了天然和接枝藻酸盐水凝胶的结构。使用RSM / CCD响应表面方法进行了优化了吸附实验,并作为pH溶液和吸附剂剂量函数进行了优化。还讨论了金属和染料,温度和接触时间的初始浓度,并计算了等温,热力吸附和动力学理论常数。结果显示,海藻酸盐接枝纳米复合泵/ NiFe2O4增强了亚甲基蓝(MB)颜色去除的比例(98.32%)和金属离子放电(83%)。在pH(5.75和4)和温度(318.15k)下,在pH(5.75和4)中获得最佳阳离子染料Mb和Cu 2 +离子吸附能力。对于MB染料和Cu2 +离子,伪2nd阶模型有效地定义了吸附动力学,并且Freundlich模型可以精确地解释吸附等温,而不是Cu2 +朗米尔吸附模型,而MB染料的吸附显示出对Freundlich的较大存在和Langmuir设计。 MB染料和Cu2 +离子分别记录了275.6和22.81mg / g的最高吸附容量;表示从阳离子染料水溶液和毒性重金属的水溶液的有效分离。[图形]。

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