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首页> 外文期刊>Chemical engineering journal >Adsorption of Ni~(2+), Zn~(2+) and Pb~(2+) onto dry biomass of Arthrospira (Spirulina) platensis and Chlorella vulgaris. I. Single metal systems
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Adsorption of Ni~(2+), Zn~(2+) and Pb~(2+) onto dry biomass of Arthrospira (Spirulina) platensis and Chlorella vulgaris. I. Single metal systems

机译:Ni〜(2 +),Zn〜(2+)和Pb〜(2+)吸附在节肢螺旋藻和小球藻的干生物量上。一,单金属系统

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Adsorption of Ni~(2+), Zn~(2+) or Pb~(2+) by dry biomass of Arthrospira (Spirulina) platensis and Chlorella vulgaris was studied as a function of contact time and initial metal concentration. The zero point of charge calculated for these biosorbents (pH_(zpc) 4.0 and 3.4, respectively) and additional pH tests suggested the use of pH in the range 5.0-5.5 for the experiments. The equilibrium isotherms were evaluated in terms of maximum sorption capacity and sorption affinity. The pseudo first and second order kinetic models were considered to interpret the experimental data, and the latter best described the adsorption system. Both the Freundlich and Langmuir models were shown to well describe the sorption isotherms, thus suggesting an intermediate mono/multilayer sorption mechanism. Compared to A. platensis (q_e = 0.354, 0.495 and 0.508 mmol g~(-1) for Ni~(2+), Pb~(2+) and Zn~(2+), respectively), C. vulgaris behaved as a better biosorbent because of higher equilibrium sorption capacity (q_e = 0.499, 0.634 and 0.664 mmol g~(-1), respectively). The removal efficiency decreased with increasing metal concentration, pointing out a passive adsorption process involving the active sites on the surface of the biomasses. The FT-IR spectroscopy evidenced that ions removal occurred mainly by interaction between metal and carboxylate groups present on both the cell walls.
机译:研究了钝顶螺旋藻和小球藻的干生物量对Ni〜(2 +),Zn〜(2+)或Pb〜(2+)的吸附随接触时间和初始金属浓度的变化。为这些生物吸附剂计算的零电荷点(分别为pH_(zpc)4.0和3.4)和其他pH测试表明,在实验中使用5.0-5.5范围内的pH。根据最大吸附容量和吸附亲和力评估平衡等温线。伪一阶和二阶动力学模型被认为可以解释实验数据,而后者最好地描述了吸附系统。 Freundlich和Langmuir模型均能很好地描述吸附等温线,因此表明存在中间单/多层吸附机理。与A. platensis(Ni_(2 +),Pb〜(2+)和Zn〜(2+)的q_e = 0.354、0.495和0.508 mmol g〜(-1)相比)更好的生物吸附剂,因为它具有更高的平衡吸附容量(分别为q_e = 0.499、0.634和0.664 mmol g〜(-1))。去除效率随金属浓度的增加而降低,指出了涉及生物质表面活性位的被动吸附过程。 FT-IR光谱表明,离子的去除主要是通过两个细胞壁上存在的金属和羧酸根基团之间的相互作用而发生的。

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