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    多糖基水凝胶SCAS对重金属离子的吸附性能

    Adsorption performance of polysaccharide-based hydrogel SCAS for heavy metal ions

    • 摘要: 以玉米淀粉(St)和羧甲基纤维素钠(CMC-Na)为原料,丙烯酰胺(AM)、丙烯酸(AA)和2-丙烯酰胺-2-甲基丙磺酸(AMPS)为接枝单体,合成了多糖基水凝胶SCAS。仅以St为原料,采用同样的接枝单体,合成了另一种多糖基水凝胶StAS。将两种水凝胶用于溶液中Cu2+的吸附,比较两者的吸附性能。实验发现,由于CMC-Na的引入,SCAS的吸附性能优于StAS。对两种水凝胶的吸附动力学和吸附等温线数据进行拟合,结果表明,两种水凝胶对Cu2+的吸附过程都符合准二级动力学模型和Langmuir 模型,属于化学吸附和单分子层吸附。在25 ℃时,StAS的吸附容量为85.47 mg·g−1,SCAS为99.90 mg·g−1。以SCAS作为Cu2+吸附剂,适用于4.0<pH<5.5的水质条件,当溶液中含有高价阳离子(Fe3+)时,吸附效果显著降低。当溶液中同时存在几种重金属离子时,SCAS对重金属离子存在吸附选择性,吸附顺序为Cu2+>Cd2+>Ni2+。对吸附机理的研究表明,SCAS对Cu2+的吸附主要通过配位作用。SCAS具有较好的循环使用性,经过4次再生后,Cu2+去除率仍可达到83.2%。研究结果可为多糖基水凝胶的研究开发提供思路和借鉴。

       

      Abstract: Polysaccharide-based hydrogel SCAS was synthesized from cornstarch (St) and sodium carboxymethyl cellulose (CMC-Na) as raw materials, acrylamide (AM), acrylic acis (AA) and 2-acrylamido-2-methylpropane sulfonic acid (AMPS) as graft monomers. Another polysride-based hydrogel StAS was synthesized from St by using the same graft monomers. Two kinds of hydrogels were used to adsorb Cu2+ in solution, and their adsorption performances were compared. Due to the addition of CMC-Na, the adsorption performance of SCAS was superior to that of StAS. The adsorption kinetics and adsorption isotherm data of the two hydrogels were fitted, and the results showed that the adsorption process of Cu2+ on the two hydrogels was consistent with Langmuir model and quasi-second-order kinetic model, which belonged to monolayer adsorption and chemical adsorption. At 25 ℃, the adsorption capacity of StAS was 85.47 mg·g−1, while that of SCAS was 99.90 mg·g−1. Using SCAS as a Cu2+ adsorbent, it was suitable for water quality conditions with 4.0<pH<5.5. When the solution contained high valence cations (Fe3+), the adsorption effect was significantly reduced. When several heavy metal ions were present simultaneously in the solution, SCAS selectively adsorbed the heavy metal ions in the order of Cu2+>Cd2+>Ni2+. Research on the adsorption mechanism showed that the adsorption of Cu2+ by SCAS was mainly through coordination. SCAS had good recyclability, and after 4 regenerations, the Cu2+ removal rate could still reach 83.2%. The research results provide ideas and references for the research and development of polysaccharide-based hydrogels.

       

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