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一种用于高效、选择性去除废水中Cr(VI)的新型木质素基分级多孔碳。

A novel lignin-based hierarchical porous carbon for efficient and selective removal of Cr(VI) from wastewater.

作者信息

Liang Hongxu, Ding Wei, Zhang Hongwei, Peng Pai, Peng Feng, Geng Zengchao, She Diao, Li Yan

机构信息

College of Natural Resources and Environment, Northwest A&F University, Yangling 712100, China.

College of Forestry, Northwest A&F University, Yangling 712100, China.

出版信息

Int J Biol Macromol. 2022 Apr 15;204:310-320. doi: 10.1016/j.ijbiomac.2022.02.014. Epub 2022 Feb 8.

Abstract

A novel lignin-based hierarchical porous carbon (L-HPC) was prepared to remove Cr(VI) from water by using industrial alkali lignin through simple hydrothermal-induced assembly and alkali activation strategy. The adsorbent were characterized by SEM-EDS mapping, TEM, BET, XPS, FTIR, Raman spectroscopy and zeta potential. The characterization results indicated that L-HPC contained three-dimensional connected channels and many adsorbing N, O and other adsorption groups, which is very beneficial for Cr(VI) adsorption. The kinetics showed that the L-HPC adsorption of Cr(VI) was chemical adsorption and mainly controlled by intraparticle diffusion. The isotherm and thermodynamics indicated that L-HPC adsorption of Cr(VI) conforms to the Freundlich model, L-HPC is a kind of multimolecular layer adsorbent, and the adsorption capacity of Cr(VI) by L-HPC was 887.8 mg/g, which was significantly higher than values for other adsorbents. Ion competition simulation and actual water body tests showed that L-HPC exhibits high selectivity for Cr(VI) adsorption, adsorption cycle experiments show that L-HPC maintains over 83% performance after 12 cycles. Cost analysis shows that L-HPC is suitable for mass production. Therefore, L-HPC is a Cr(VI) adsorbent with high efficiency, high selectivity, and high reusability, which is broadly applicable and shows favorable prospects.

摘要

通过简单的水热诱导组装和碱活化策略,使用工业碱木质素制备了一种新型木质素基分级多孔碳(L-HPC),用于去除水中的Cr(VI)。采用扫描电子显微镜-能谱映射(SEM-EDS mapping)、透射电子显微镜(TEM)、比表面积分析仪(BET)、X射线光电子能谱(XPS)、傅里叶变换红外光谱(FTIR)、拉曼光谱和zeta电位对吸附剂进行了表征。表征结果表明,L-HPC含有三维连通通道以及许多吸附N、O等的吸附基团,这对Cr(VI)的吸附非常有利。动力学研究表明,L-HPC对Cr(VI)的吸附为化学吸附,主要受颗粒内扩散控制。等温线和热力学研究表明,L-HPC对Cr(VI)的吸附符合Freundlich模型,L-HPC是一种多分子层吸附剂,L-HPC对Cr(VI)的吸附容量为887.8 mg/g,显著高于其他吸附剂的值。离子竞争模拟和实际水体试验表明,L-HPC对Cr(VI)的吸附具有高选择性,吸附循环实验表明,L-HPC在12次循环后仍保持83%以上的性能。成本分析表明,L-HPC适合大规模生产。因此,L-HPC是一种高效、高选择性、高可重复使用性的Cr(VI)吸附剂,具有广泛的适用性和良好的应用前景。

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