纤维素纳米复合吸附剂对重金属的有效去除:响应面法

A. Alipour, S. Zarrinabadi, A. Azimi, M. Mirzaei
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引用次数: 1

摘要

合成了纤维素纳米复合材料,并将其应用于水中铅(II)的去除。采用FT-IR、XRD、SEM、TEM和BET等手段对合成的纳米复合材料进行了表征。在实验室进行了去除实验,然后采用响应面法(RSM)进行了中心-复合设计评价。考察了溶液pH、接触度、初始浓度、吸附剂投加量和温度对Pb(II)去除率的影响。采用方差分析(ANOVA)找出哪些参数对去除效率有显著影响。当初始溶液pH为6.5、温度为34℃、初始离子浓度为100 mg/L、吸附剂投加量为0.74 g/L时,去除效果最佳。在此条件下,对Pb(II)离子的去除率为92.54%。吸附平衡数据符合Langmuir等温线模型,吸附过程符合准二级和颗粒内扩散动力学模型。热力学分析表明,吸附过程是吸热的,熵增加,是自发的。此外,纳米复合材料在连续4次吸附-解吸循环中重复使用,表明吸附剂具有良好的再生能力。在最佳条件下,考察了共存阳离子对Pb(II)吸附的影响。结果表明,纳米复合材料是一种有潜力的可循环利用的废水系统中有害金属离子吸附剂。
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Effective Removal of Heavy Metal Using Cellulose Nanocomposite Adsorbents: Response Surface Methodology
Cellulose nanocomposites were synthesized and applied to the removal of Pb(II) from aqueous solution. The synthesized nanocomposite was characterized by FT-IR, XRD, SEM, TEM, and BET analyses. Removal experiments were carried out in laboratory scale and then evaluated by response surface methodology (RSM) with a Central-Composite Design. The effects of solution pH, contact tie, initial Pb(II) concentration, adsorbent dosage and temperature on the removal efficiency were evaluated. Analysis of variance (ANOVA) was employed to find which parameter has a significant effect on the removal efficiency. The best removal efficiency value was found to be at the initial solution pH of 6.5, temperature of 34°C, initial ion concentration of 100 mg/L and the adsorbent dosage of 0.74 g/L. At this condition, the removal efficiency of Pb(II) ions was 92.54%. The adsorption equilibrium data fitted well with Langmuir isotherm model and the adsorption process followed the pseudo-second-order and intra-particle diffusion kinetic model. Thermodynamic analysis suggests that the adsorption process is endothermic, with an increasing entropy and spontaneous in nature. Besides, the nanocomposite was reused in four successive adsorption – desorption cycles, revealing a good regeneration capacity of the adsorbent. The effects of coexist cation ions on the adsorption of Pb(II) under optimal condition was also investigated. All the results demonstrate that nanocomposite is a potential recyclable adsorbent for hazardous metal ions in wastewater system.
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