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介孔吸附剂微观结构对低浓度挥发性有机化合物吸附的影响:实验与模拟研究

Effect of microstructure in mesoporous adsorbents on the adsorption of low concentrations of VOCs: An experimental and simulation study.

作者信息

Liu Yangyu, Peyravi Arman, Dong Xiongbo, Hashisho Zaher, Zheng Shuilin, Chen Xiao, Gao Du, Hao Yongxing, Tong Yuping, Wang Jiuyue

机构信息

School of Materials Science and Engineering, North China University of Water Resources and Electric Power, Zhengzhou 450045, PR China; School of Chemical and Environment Engineering, China University of Mining and Technology (Beijing), Beijing 100083, PR China; Department of Civil and Environmental Engineering, University of Alberta, Edmonton AB T6G 2W2, Canada.

Department of Civil and Environmental Engineering, University of Alberta, Edmonton AB T6G 2W2, Canada.

出版信息

J Hazard Mater. 2023 Sep 15;458:131934. doi: 10.1016/j.jhazmat.2023.131934. Epub 2023 Jun 25.

Abstract

This study evaluated the adsorption of five volatile organic compounds (VOCs) on Opoka, precipitated silica, and palygorskite, to elucidate the effect of their pore size on VOCs adsorption. The adsorption capacity of these adsorbents is not only highly correlated with their surface area and pore volume, but also notably improved by the presence of micropores. The variation in adsorption capacity for different VOCs was primarily influenced by their boiling point and polarity. Palygorskite, which had the smallest total pore volume (0.357 cm/g) but the largest micropore volume (0.043 cm/g) among the three adsorbents, exhibited the highest adsorption capacity for all tested VOCs. Additionally, the study constructed slit pore models of palygorskite with micropores (0.5 and 1.5 nm) and mesopores (3.0 and 6.0 nm), calculated and discussed the heat of adsorption, concentration distribution, and interaction energy of VOCs adsorbed on different pore models. The results revealed that the adsorption heat, concentration distribution, total interaction energy, and van der Waals energy decrease with increasing pore size. The concentration of VOCs in 0.5 nm pore was nearly three times that in 6.0 nm pore. This work can also provide guidance for further research on using adsorbents with mixed microporous and mesoporous structures to control VOCs.

摘要

本研究评估了奥波卡、沉淀二氧化硅和坡缕石对五种挥发性有机化合物(VOCs)的吸附情况,以阐明其孔径对VOCs吸附的影响。这些吸附剂的吸附容量不仅与其表面积和孔体积高度相关,而且微孔的存在也显著提高了吸附容量。不同VOCs吸附容量的变化主要受其沸点和极性的影响。坡缕石在三种吸附剂中总孔体积最小(0.357 cm/g),但微孔体积最大(0.043 cm/g),对所有测试的VOCs表现出最高的吸附容量。此外,该研究构建了具有微孔(0.5和1.5 nm)和中孔(3.0和6.0 nm)的坡缕石狭缝孔模型,计算并讨论了吸附热、浓度分布以及VOCs在不同孔模型上的吸附相互作用能。结果表明,吸附热、浓度分布、总相互作用能和范德华能随孔径增大而降低。0.5 nm孔中VOCs的浓度几乎是6.0 nm孔中浓度的三倍。这项工作还可为进一步研究使用具有混合微孔和中孔结构的吸附剂控制VOCs提供指导。

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