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Enhanced Recyclable Magnetized Palm Shell Waste-Based Powdered Activated Carbon for the Removal of Ibuprofen: Insights for Kinetics and Mechanisms

机译:增强的可回收磁化棕榈壳废粉状活性炭去除布洛芬的动力学和机理的见解

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摘要

A novel preparation method of magnetized palm shell waste-based powdered activated carbon (MPPAC, avg. size 112 μm) was developed. The prepared MPPAC was assessed by several physicochemical analyses, and batch tests were performed for ibuprofen (IBP) removal. Field emission scanning electron microscopy (FESEM) and N2 gas isotherms revealed that magnetite and maghemite were homogeneous and deposited mostly on the surface of PPAC without a significant clogging effect on the micropores. Isotherm results showed that 3.8% Fe (w/w) impregnated PPAC [MPPAC-Fe(3.8%)] had about 2.2-fold higher maximum sorption capacity (157.3 mg g-1) and a 2.5-fold higher sorption density (0.23 mg m-2) than pristine PPAC. Both Fourier-transform infrared spectroscopy (FTIR) and isotherm data indicated that the high sorption capacity and density of IBP by MPPAC was primarily attributable to donor-acceptor complexes with the C = O group and dispersive π-π interactions with the carbon surface. Based on kinetic and repeated adsorption tests, pore diffusion was the rate-limiting step, and MPPAC-Fe(3.8%) had about 1.9~2.8- and 9.1~15.8-fold higher rate constants than MPPAC-Fe(8.6%) and palm shell-waste granular activated carbon (PGAC, avg. size 621 μm), respectively. MPPAC showed almost eight fold greater re-adsorption capacity than PPAC due to a thermal catalytic effect of magnetite/maghemite.
机译:开发了一种新颖的磁化棕榈壳废料粉状活性炭制备方法(MPPAC,平均粒径为112μm)。通过几次理化分析评估了制备的MPPAC,并进行了布洛芬(IBP)去除的分批测试。场发射扫描电子显微镜(FESEM)和N2气体等温线表明,磁铁矿和磁赤铁矿是均质的,并且大部分沉积在PPAC的表面上,而对微孔没有明显的堵塞作用。等温线结果表明,3.8%Fe(w / w)浸渍的PPAC [MPPAC-Fe(3.8%)]的最大吸附容量(157.3 mg g -1 )高出约2.2倍,而2.5-吸附密度(0.23 mg m -2 )是原始PPAC的两倍。傅里叶变换红外光谱(FTIR)和等温线数据均表明,MPPAC对IBP的高吸附能力和密度主要归因于C = O基团的供体-受体配合物以及与碳表面的分散π-π相互作用。根据动力学和反复吸附测试,孔扩散是限速步骤,MPPAC-Fe(3.8%)的速率常数分别比MPPAC-Fe(8.6%)和棕榈高1.9〜2.8-和9.1〜15.8倍壳废颗粒状活性炭(PGAC,平均粒径621μm)。由于磁铁矿/磁赤铁矿的热催化作用,MPPAC显示出比PPAC几乎高出八倍的再吸附能力。

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  • 页码 e0141013
  • 总页数 18
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