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Arsenate removal from water using Fe3O4-loaded activated carbon prepared from waste biomass

机译:使用由废生物质制备的负载有Fe3O4的活性炭去除水中的砷

摘要

A novel process for the preparation of Fe3O4-loaded activated carbon (MY) was developed using waste biomass. The key point of the synthetic strategy was that the carbonization, activation and Fe3O4 loading were accomplished simultaneously. The low-cost composite was characterized and used as an adsorbent for arsenate removal from water. The results showed that the Fe3O4 particles were uniformly deposited on the surface of the composite. The composite exhibited high surface area of 349 m(2)/g, pore volume of 0.20 cm(3)/g and iron of 39 wt.% for arsenate adsorption. As an adsorbent, higher temperature favored the adsorption capacity and the adsorption process was well fitted by pseudo-second-order model. The composite showed an excellent adsorption capability for arsenate with a maximum adsorption capacity of 204.2 mg/g at pH 8.0 and the adsorption process followed the Freundlich isotherm model well. In addition, the composite exhibited a saturation magnetization of 47.67 emu/g, which allowed it to be easily recovered by an external magnetic field after the adsorption process. (C) 2010 Elsevier B.V. All rights reserved.
机译:利用废生物质开发了一种制备负载Fe3O4的活性炭(MY)的新方法。合成策略的关键是碳化,活化和Fe3O4的负载同时完成。对低成本复合材料进行了表征,并将其用作从水中去除砷的吸附剂。结果表明,Fe 3 O 4颗粒均匀地沉积在复合材料的表面上。该复合材料显示出349 m(2)/ g的高表面积,0.20 cm(3)/ g的孔体积和39 wt。%的铁用于砷酸盐吸附。作为吸附剂,较高的温度有利于其吸附容量,且吸附过程符合拟二阶模型。该复合材料对砷酸根表现出优异的吸附能力,在pH 8.0时的最大吸附能力为204.2 mg / g,吸附过程很好地遵循了Freundlich等温模型。另外,该复合物表现出47.67 emu / g的饱和磁化强度,这使其在吸附过程之后易于通过外部磁场被回收。 (C)2010 Elsevier B.V.保留所有权利。

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