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预处理木质纤维素废物作为前驱体制备高多孔活性炭及其在水溶液中对 Pb(II)和 Cr(VI)的吸附应用。

Pretreatment of lignocellulosic waste as a precursor for synthesis of high porous activated carbon and its application for Pb (II) and Cr (VI) adsorption from aqueous solutions.

机构信息

Department of Natural Resources, Isfahan University of Technology, Isfahan 84156-83111, Iran.

Department of Resource Recovery and Building Technology, Faculty of Textiles, Engineering and Business, University of Borås, S-501 90 Borås, Sweden.

出版信息

Int J Biol Macromol. 2021 Jun 1;180:299-310. doi: 10.1016/j.ijbiomac.2021.03.078. Epub 2021 Mar 16.

Abstract

Effects of Elm tree sawdust pretreatments using alkali and alkaline earth metals (NaCl, KCl, CaCl, MgCl and Elm tree ash) and deashing solutions (water, HCl, HNO and aqua regia) before the carbonization process on the porosity of produced activated carbons and Pb (II) and Cr (VI) adsorption were studied. The activated carbons were characterized by pore size distribution, surface area, FTIR, and SEM-EDX analysies. Based on the results, HCl leaching pretreatment of the biomass increased the activated carbon adsorption capacity of Cr (VI) from 114 to 190 mg g. The treatment of biomass with alkali and alkali earth metal salts, especially MgCl, remarkably increased the activated carbon adsorption capacity of Pb (II) from 233 to 1430 mg g. The results indicated that Pb (II) adsorption was attributed to both the mesoporous structure of activated carbon and the abundance of Mg on the activated carbon's surface. On the other hand, the micropores played a major role in Cr (VI) adsorption capacity. The development of the micro- or mesoporous structure of activated carbons through pretreatment of lignocellulosic precursor could be an approach for providing high performance activated carbons for Pb (II) and Cr (VI) removal from aqueous solutions.

摘要

在碳化前,使用碱金属和碱土金属(NaCl、KCl、CaCl、MgCl 和榆木灰)以及脱灰溶液(水、HCl、HNO 和王水)对榆木锯末进行预处理,研究了这对所制备的活性炭的孔隙率以及对 Pb(II)和 Cr(VI)吸附的影响。通过孔径分布、比表面积、FTIR 和 SEM-EDX 分析对活性炭进行了表征。基于这些结果,HCl 浸出预处理生物质可将 Cr(VI)的活性炭吸附容量从 114 增加到 190 mg/g。用碱金属和碱土金属盐,特别是 MgCl 处理生物质,可将 Pb(II)的活性炭吸附容量从 233 增加到 1430 mg/g。结果表明,Pb(II)的吸附归因于活性炭的中孔结构和活性炭表面上丰富的 Mg。另一方面,微孔在 Cr(VI)吸附容量中起主要作用。通过预处理木质纤维素前体来开发活性炭的微孔或中孔结构,可能是提供用于从水溶液中去除 Pb(II)和 Cr(VI)的高性能活性炭的一种方法。

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