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Optimization and mechanisms of biosorption process of Zn(II) on rape straw powders in aqueous solution

机译:Zn(II)在水溶液中Zn(II)生物吸附过程的优化和机制

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摘要

The different part powders of rape straw as adsorbents were performed to remove zinc ions from aqueous solution in this work. The various factors on influencing removal efficiency of Zn(II) were investigated, and the operational conditions were optimized using the Box-Behnken design of response surface methodology (RSM). Under the optimum conditions obtained, the removal rates of Zn(II) were attained to 100.00%, 78.02%, and 17.00% by straw pith core, seedpods, and shell of rape straw, respectively. Equilibrium and kinetic models were applied to evaluate the adsorption behaviors of Zn(II) on the adsorbents. The equilibrium data were best described by the Langmuir isotherm model, which indicated that the adsorption behaviors were favorably monolayer adsorption processes. The biosorption capacities of Zn(II) were 34.66 mg g(-1), 36.41 mg g(-1), and 36.74 mg g(-1) of rape straw pith core; 23.33 mg g(-1), 23.85 mg g(-1), and 24.30 mg g(-1) of seedpods; and 11.19 mg g(-1), 11.23 mg g(-1), and 11.27 mg g(-1) of shell, respectively, at the various temperatures of 20 degrees C, 30 degrees C, and 40 degrees C based on Langmuir isotherm equation. The pseudo-second-order kinetic model was well to determine the adsorption kinetics, which suggested that ion exchange were occurred during adsorption processes of Zn(II). The characteristics of adsorbents before and after adsorption of Zn(II) were measured using the methods of scanning electron microscope (SEM), zeta potential classes, energy dispersive spectrometer (EDS), and Fourier transform infrared spectroscopy (FT-IR), respectively. The results provided evidences for the adsorption mechanisms of Zn(II) including electrostatic attraction, ion exchange, and functional group involvement on the three part powders of rape straw in aqueous water.
机译:作为吸附剂进行油菜秸秆的不同部分的粉末,从在该工作水溶液除去锌离子。对影响锌(II)的去除效率的各种因素进行了研究,并使用响应面分析法(RSM)的箱Behnken法设计进行了优化的操作条件。下获得的最佳条件下,Zn中的去除速率(II)获得至100.00%,78.02%,和分别由稻草髓芯,心皮,和油菜秸秆的壳,17.00%的。平衡和动力学模型,用于评估锌(II)对吸附剂吸附行为。平衡数据最好通过Langmuir等温线模型,这表明吸附行为是有利的单层吸附过程进行说明。锌(II)的吸附容量分别为34.66毫克克(-1),36.41毫克克(-1),和36.74毫克克(-1)油菜秸秆髓芯; 23.33毫克克(-1),23.85毫克克(-1),和24.30毫克克(-1)的心皮;和11.19毫克克(-1),11.23毫克克(-1),和11.27毫克克(-1)的外壳,分别在C,30°C,以及40℃根据朗缪尔20度的不同温度下的等温式。伪二级动力学模型是很好地确定吸附动力学,这表明期间(II)Zn的吸附过程进行了发生离子交换。使用扫描电子显微镜的(SEM)(EDS)的方法中,ζ电势类,能量分散光谱仪测定吸附剂的Zn的吸附(II)前和后的特性,和傅立叶分别变换红外光谱(FT-IR),。结果为Zn中包括静电吸引,离子交换,和在水溶液水油菜秸秆的三个部分粉末官能团参与吸附机制(II)提供了依据。

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