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Highly efficient removal of bivalent heavy metals from aqueous systems by magnetic porous Fe3O4-MnO2: Adsorption behavior and process study

机译:磁性多孔Fe3O4-MnO2从水性体系中高效去除二价重金属:吸附行为和工艺研究

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In this study, magnetic Fe3O4-MnO2 nanoplates were successfully synthesized by a facile hydrothermal process in order to remove bivalent heavy metals from water. The Fe3O4 part facilitated the reclamation of the adsorbent. Meanwhile, the modification by amorphous MnO2 could significantly enhance the specific surface area of Fe3O4-MnO2 and decrease the point of zero charge, thus ensured the good adsorption capacity for metal cations. The adsorption isotherms and kinetics of the five metal ions on Fe3O4-MnO2 and the pH effect on removal efficiency were detailedly investigated. Sips isotherm was the most suitable model to describe Pb2+, Cu2+, Cd2+ and Zn2+ adsorption on Fe3O4-MnO2, while Temkin, Redlich-Peterson and Langmuir models showed a higher fitting degree for Ni2+. The adsorption capacities of Pb2+, Cu2+, Cd2+, Zn2+ and Ni2+ on Fe3O4-MnO2 were 208.17, 111.90, 169.90 100.24 and 55.63 mg/g, respectively. Kinetic data were better fitted to pseudo-second-order model (R-2 > 0.99), indicating a dominant role of chemisorption. Further analysis of infrared spectra demonstrated that the adsorption process was achieved mainly by ion exchange and complexation. The adsorption rates and preference ranking of metal ions on Fe3O4-MnO2 were in the same order: Pb2+ > Cu2+ > Cd2+ > Zn2+ > Ni2+. Moreover, the adsorbent showed good recyclability and excellent ability of neutralizing the solutions by surface protonation and deprotonation. Overall, the reported results here have significant implications for removing metal cations from water in practice. (C) 2016 Elsevier B.V. All rights reserved.
机译:在这项研究中,磁性Fe3O4-MnO2纳米板通过简便的水热工艺成功合成,以去除水中的二价重金属。 Fe3O4部分有助于吸附剂的回收。同时,非晶态MnO2的改性可以显着提高Fe3O4-MnO2的比表面积,降低零电荷点,从而保证了对金属阳离子的良好吸附能力。详细研究了五种金属离子在Fe3O4-MnO2上的吸附等温线和动力学以及pH对去除效率的影响。 Sips等温线是最适合描述Pb2 +,Cu2 +,Cd2 +和Zn2 +在Fe3O4-MnO2上吸附的模型,而Temkin,Redlich-Peterson和Langmuir模型对Ni2 +的拟合度更高。 Fe3O4-MnO2的Pb2 +,Cu2 +,Cd2 +,Zn2 +和Ni2 +的吸附容量分别为208.17、111.90、169.90 100.24和55.63 mg / g。动力学数据更好地拟合拟二阶模型(R-2> 0.99),表明化学吸附起主要作用。红外光谱的进一步分析表明,吸附过程主要是通过离子交换和络合实现的。 Fe3O4-MnO2上金属离子的吸附速率和优先级顺序相同:Pb2 +> Cu2 +> Cd2 +> Zn2 +> Ni2 +。而且,该吸附剂显示出良好的可回收性,并具有通过表面质子化和去质子化中和溶液的优异能力。总体而言,此处报道的结果对实际去除水中的金属阳离子具有重要意义。 (C)2016 Elsevier B.V.保留所有权利。

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