RSM法优化牛马尾藻对溶液中铀的生物吸附

N. Hashemi, R. Dabbagh, M. Noroozi, S. Baradaran
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引用次数: 2

摘要

采用响应面法(RSM)下的中心复合设计(CCD),通过改变三个独立参数(pH、初始铀离子浓度、牛马尾藻投加量),研究了牛马尾藻对水溶液中铀的去除潜力。在20次实验中进行了批量实验,以确定最大金属吸附量。在CCD设计中,利用这些参数的不同水平与重金属吸收量(q)之间的定量关系,计算出这些参数的优化水平。对所提出的二次模型进行方差分析(ANOVA),发现该模型具有高度显著性(R2 = 0.9940)。最佳设置为初始pH为2.81(基于实验方法设计),接触时间为180 min的s - boveanum浓度为1.01 g/L,铀离子浓度为418.92 mg/L,可获得255 mg/g生物量的最佳铀吸收率。采用Langmuir、Freundlich、Temkin和Dubinin-Radushkevich等温线模型对吸附过程进行了评价,实验数据与Langmuir等温线模型拟合程度较好,最大吸附量为500 mg/g。利用红外光谱(FTIR)和扫描电镜对该生物吸附剂进行了表征,发现其对铀的生物吸附主要由羧基、硫酸盐基、羰基和胺基等官能团组成。综上所述,本研究表明牛乳杆菌是一种很有前途的去除水中铀污染物的生物吸附剂。
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Optimization of uranium biosorption in solutions by Sargassum boveanum using RSM method
The potential use of Sargassum boveanum algae for the removal of uranium from aqueous solution has been studied by varying three independent parameters (pH, initial uranium ion concentration, S. boveanum dosage) using a central composite design (CCD) under response surface methodology (RSM). Batch mode experiments were performed in 20 experimental runs to determine the maximum metal adsorption capacity. In CCD design, the quantitative relationship between different levels of these parameters and heavy metal uptake (q) were used to work out the optimized levels of these parameters. The analysis of variance (ANOVA) of the proposed quadratic model revealed that this model was highly significant (R2 = 0.9940). The best set required 2.81 as initial pH(on the base of design of experiments method), 1.01 g/L S. boveanum and 418.92 mg/L uranium ion concentration within 180 min of contact time to show an optimum uranium uptake of 255 mg/g biomass. The biosorption process was also evaluated by Langmuir, Freundlich, Temkin and Dubinin-Radushkevich isotherm models represented that the experimental data fitted to the Langmuir isotherm model of a suitable degree and showed the maximum uptake capacity of 500 mg/g. FTIR and scanning electron microscopy were used to characterize the biosorbent and implied that the functional groups (carboxyl, sulfate, carbonyl and amine) were responsible for the biosorption of uranium from aqueous solution. In conclusion, the present study showed that S. boveanum could be a promising biosorbent for the removal of uranium pollutants from aqueous solutions.
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