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采用Box-Behnken设计通过FeCl活化法制备棉纺织废料基磁性活性炭:优化与特性

Fabrication of cotton textile waste-based magnetic activated carbon using FeCl activation by the Box-Behnken design: optimization and characteristics.

作者信息

Xu Zhihua, Zhang Tianqi, Yuan Zhihang, Zhang Daofang, Sun Zhenhua, Huang YuanXing, Chen Weifang, Tian Danqi, Deng Haixuan, Zhou Yuwei

机构信息

School of Environment and Architecture, University of Shanghai for Science and Technology 516 Jungong Rd. Shanghai 200093 PR China

出版信息

RSC Adv. 2018 Nov 13;8(66):38081-38090. doi: 10.1039/c8ra06253f. eCollection 2018 Nov 7.

Abstract

Cotton textile waste-based magnetic activated carbon was prepared simultaneous activation-pyrolysis using FeCl as a novel activating agent. The response surface methodology based on the Box-Behnken design method was applied to optimize the preparation parameters and predict the specific surface area of the samples. The optimal activated carbon was obtained at a mass ratio of FeCl/CTW, activation time and activation temperature of 1.62 : 1, 1 h and 700 °C, respectively. The experimental maximum yield and iodine adsorptive value (32.66% and 714.55 mg g) of the resultant carbon were close to that of the predicated response values (34.85% and 783.75 mg g), respectively. SEM, N adsorption-desorption isotherms, XRD, PPMS, FTIR and pH measurements were conducted to analyze the physicochemical characteristics of the optimal sample. The results showed that the carbon matrix had a high specific surface area of 837.39 m g with abundant micropores and acidic surface functional groups, and the saturation magnetization (Ms) was 5.2 emu g due to the formation of FeO. The maximum adsorption of Cr(vi) by the carbon reached 212.77 mg g. Furthermore, the addition of FeCl lowered the pyrolytic carbonization temperature and inhibited the generation of volatiles in the activation-pyrolysis process. Meanwhile, the formation of FeO and FeO derived from FeCl was beneficial for the development of vast micropores.

摘要

以棉纺织废料为原料,采用新型活化剂FeCl进行同步活化-热解制备了磁性活性炭。应用基于Box-Behnken设计方法的响应面法优化制备参数,并预测样品的比表面积。分别在FeCl/CTW质量比为1.62∶1、活化时间为1 h、活化温度为700℃的条件下获得了最佳活性炭。所得活性炭的实验最大产率和碘吸附值(分别为32.66%和714.55 mg/g)分别接近预测响应值(34.85%和783.75 mg/g)。通过扫描电子显微镜(SEM)、N2吸附-脱附等温线、X射线衍射(XRD)、脉冲极化磁体系统(PPMS)、傅里叶变换红外光谱(FTIR)和pH测量对最佳样品的物理化学特性进行了分析。结果表明,碳基体具有837.39 m2/g的高比表面积,含有丰富的微孔和酸性表面官能团,由于Fe3O4的形成,饱和磁化强度(Ms)为5.2 emu/g。该碳对Cr(Ⅵ)的最大吸附量达到212.77 mg/g。此外,FeCl的加入降低了热解碳化温度,抑制了活化-热解过程中挥发性物质的产生。同时,由FeCl衍生的Fe3O4和FeO的形成有利于大量微孔的发育。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3144/9089844/80b6a97fee01/c8ra06253f-f1.jpg

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