沸石改性海藻酸钠/羟基磷灰石水凝胶去除水溶液中的铜(II)

Afsaneh Barekat, M. Mirzaei
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摘要

本文研究了以海藻酸钠(SA)和羟基磷灰石(HA)纳米颗粒为基础的合成水凝胶型吸附聚合物对水溶液中铜离子的去除作用。考察了沸石的加入对该水凝胶吸附性能的影响,并通过改变沸石的用量确定了沸石的最佳用量。FTIR光谱测定了合成吸附剂的结构;采用非连续吸附实验研究了吸附动力学、热力学和吸附剂的回收率。结果表明,沸石和纳米复合材料对Cu离子的最大吸附量分别为29.7 mg/g和75.8 mg/g。动力学研究表明,两种吸附剂对Cu离子的吸附过程均符合准二级动力学方程。沸石和水凝胶分别用了90分钟和120分钟达到平衡。热力学研究表明,两种吸附剂对Cu的吸附均符合Langmuir等温线(R2=0.99)。由于吸附剂的回收率及其寿命在吸附过程中非常重要,因此采用盐酸(重量比2%)进行回收。测定了回收吸附剂的排斥力系数和5次回收的吸附剂效率。试验结果表明,该吸附剂对铜的排斥系数为70 ~ 82.75%,5次回收循环后对铜的吸附效率为初始吸附剂的75%。
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Removal of Copper (II) from aqueous solutions by sodium alginate/hydroxy apatite hydrogel modified by Zeolite
The study presented in this article investigated the removal of copper ions from aqueous solutions by a synthetic hydrogel-forming adsorbent polymer based on sodium alginate (SA) and hydroxy apatite (HA) nanoparticles. The effect of adding Zeolite on the adsorption performance of this hydrogel was also investigated, and the optimum amount of Zeolite was determined by changing its quantity. The FTIR spectrum determined the structure of the synthesized adsorbent; non-continuous adsorption tests were performed to study the kinetics and thermodynamics of adsorption and also the recovery of the adsorbent. The degree of adsorption of the synthesized nanocomposite was compared with that of Zeolite, and the results showed that the maximum adsorption capacities of Zeolite and the nanocomposite for Cu ions were 29.7 and 75.8 mg/g, respectively. The kinetic studies indicated that the process of adsorption of Cu ions on both absorbents followed a pseudo second order kinetic equation. It took the Zeolite and the hydrogel 90 and 120 minutes, respectively, to reach equilibrium. The thermodynamic studies showed that Cu absorption by both adsorbents matched the Langmuir isotherm very well (R2=0.99). Since adsorbent recovery and its lifespan are of significant importance in absorption processes, recovery was carried out by hydrochloric acid (2% by weight). The repulsion coefficient of the recovered adsorbent and its efficiency in five recovery cycles were measured. The results of the tests indicated that the repulsion coefficient of Cu was 70-82.75 percent and the adsorption efficiency of Cu after 5 recovery cycles was 75 percent of the initial adsorbent.
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