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首页> 外文期刊>Journal of environmental sciences >Co-adsorption of gaseous benzene, toluene, ethylbenzene, m-xylene (BTEX) and SO2 on recyclable Fe3O4 nanoparticles at 0-101% relative humidities
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Co-adsorption of gaseous benzene, toluene, ethylbenzene, m-xylene (BTEX) and SO2 on recyclable Fe3O4 nanoparticles at 0-101% relative humidities

机译:在相对湿度为0-101%的可回收Fe3O4纳米颗粒上共吸附气态苯,甲苯,乙苯,间二甲苯(BTEX)和SO2

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摘要

We herein used Fe3O4 nanoparticles (NPs) as an adsorption interface for the concurrent removal of gaseous benzene, toluene, ethylbenzene and m-xylene (BTEX) and sulfur dioxide (SO2), at different relative humidities (RH). X-ray diffraction, Brunauer-Emmett-Teller, and transmission electron microscopy were deployed for nanoparticle surface characterization. Mono-dispersed Fe3O4 (Fe2O3 center dot FeO) NPs synthesized with oleic acid (OA) as surfactant, and uncoated poly-dispersed Fe3O4 NPs demonstrated comparable removal efficiencies. Adsorption experiments of BTEX on NPs were measured using gas chromatography equipped with flame ionization detection, which indicated high removal efficiencies (up to (95 +/- 2)%) under dry conditions. The humidity effect and competitive adsorption were investigated using toluene as a model compound. It was observed that the removal efficiencies decreased as a function of the increase in RH, yet, under our experimental conditions, we observed (40 +/- 4)% toluene removal at supersaturation for Fe3O4 NPs, and toluene removal of (83 +/- 4)% to (59 +/- 6)%, for OA-Fe3O4 NPs. In the presence of SO2, the toluene uptake was reduced under dry conditions to (89 +/- 2)% and (75 +/- 1)% for the uncoated and coated NPs, respectively, depicting competitive adsorption. At RH > 100%, competitive adsorption reduced the removal efficiency to (27 +/- 1)% for uncoated NPs whereas OA-Fe3O4 NPs exhibited moderate efficiency loss of (55 +/- 2)% at supersaturation. Results point to heterogeneous water coverage on the NP surface. The magnetic property of magnetite facilitated the recovery of both types of NPs, without the loss in efficiency when recycled and reused. (C) 2015 The Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences. Published by Elsevier B.V.
机译:我们在本文中使用Fe3O4纳米颗粒(NPs)作为吸附界面,用于在不同相对湿度(RH)下同时去除气态苯,甲苯,乙苯和间二甲苯(BTEX)和二氧化硫(SO2)。部署了X射线衍射,Brunauer-Emmett-Teller和透射电子显微镜进行纳米颗粒表面表征。以油酸(OA)为表面活性剂合成的单分散Fe3O4(Fe2O3中心点FeO)NP和未涂覆的多分散Fe3O4 NP表现出相当的去除效率。使用配备有火焰离子化检测器的气相色谱仪测量了BTEX在NP上的吸附实验,表明在干燥条件下具有很高的去除效率(高达(95 +/- 2)%)。使用甲苯作为模型化合物,研究了湿度效应和竞争性吸附。观察到去除效率随RH的增加而降低,但是,在我们的实验条件下,我们观察到过饱和状态下Fe3O4 NP的甲苯去除率为(40 +/- 4)%,甲苯的去除率为(83 + / -对于OA-Fe3O4 NP为4)%至(59 +/- 6)%。在存在SO2的情况下,干燥条件下未涂覆和涂覆的NP的甲苯吸收量分别降低至(89 +/- 2)%和(75 +/- 1)%,表现出竞争性吸附。在RH> 100%时,竞争性吸附将未包覆的NP的去除效率降低至(27 +/- 1)%,而OA-Fe3O4 NP在过饱和时表现出中等的效率损失(55 +/- 2)%。结果表明NP表面的水覆盖范围不均匀。磁铁矿的磁性促进了两种NP的回收,而在回收和再利用时效率没有损失。 (C)2015年中国科学院生态环境研究中心。由Elsevier B.V.发布

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