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MOF-199 衍生多孔碳对苯蒸气的优异吸附性能。

Remarkable adsorption performance of MOF-199 derived porous carbons for benzene vapor.

机构信息

School of Chemical Engineering and Materials Science, Quanzhou Normal University, Quanzhou, 362000, China; College of Materials Science and Engineering, Fuzhou University, Fuzhou, 350108, China.

School of Chemical Engineering and Materials Science, Quanzhou Normal University, Quanzhou, 362000, China.

出版信息

Environ Res. 2020 May;184:109323. doi: 10.1016/j.envres.2020.109323. Epub 2020 Feb 29.

Abstract

Volatile organic compounds (VOCs) are perceived as serious pollutants due to their great threat to both environment and human health. Recovery and removal of VOCs is of great significance. Herein, novel MOF-199 derived porous carbon materials (MC-T-n) were prepared by using MOF-199 as precursor, glucose as additional carbon source and KOH as activator, and then characterized. Adsorption performance of MC-T-n materials for benzene vapor was investigated. Isotherms of MC-T-n samples towards benzene and water vapor were measured. The adsorption selectivities of benzene/water were estimated by DIH (difference of the isosteric heats) equation. Results indicated that BET surface area and pore volume of MC-T-n materials reached separately 2320 m/g and 1.05 m/g. Benzene adsorption capacity of MC-T-n materials reached as high as 12.8 mmol/g at 25 °C, outperforming MOF-199 and some conventional adsorbents. Moreover, MC-T-n materials presented type-V isotherms of water vapor, suggesting their excellent water resistance. The isosteric heats of benzene adsorption on MC-500-6 were much greater than that of water adsorption, leading to a preferential adsorption for CH over HO. The adsorption selectivity of CH/HO on MC-500-6 reached up to 16.3 superior to some previously reported MOFs. Therefore, MC-500-6 was a promising candidate for VOC adsorption and seperation. This study provides a strong foundation for MOF derived porous carbons as adsorbents for VOC removal.

摘要

挥发性有机化合物(VOCs)因其对环境和人类健康的巨大威胁而被视为严重的污染物。回收和去除 VOCs 具有重要意义。本文以 MOF-199 为前驱体,葡萄糖为额外碳源,KOH 为活化剂,制备了新型 MOF-199 衍生多孔碳材料(MC-T-n),并对其进行了表征。研究了 MC-T-n 材料对苯蒸气的吸附性能。测量了 MC-T-n 样品对苯和水蒸气的吸附等温线。通过 DIH(等比热差)方程估算了苯/水的吸附选择性。结果表明,MC-T-n 材料的 BET 比表面积和孔体积分别达到 2320 m/g 和 1.05 m/g。MC-T-n 材料在 25°C 时对苯的吸附容量高达 12.8 mmol/g,优于 MOF-199 和一些传统吸附剂。此外,MC-T-n 材料对水蒸气呈现出类型-V 的吸附等温线,表明其具有优异的耐水性。苯在 MC-500-6 上的吸附等比热远大于水的吸附等比热,导致 CH 对 HO 的优先吸附。MC-500-6 对 CH/HO 的吸附选择性高达 16.3,优于一些先前报道的 MOFs。因此,MC-500-6 是一种很有前途的 VOC 吸附和分离候选材料。本研究为 MOF 衍生多孔碳作为 VOC 去除吸附剂提供了坚实的基础。

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