Enhancing adsorption capacities of low-concentration VOCs under humid conditions using NaY@meso-SiO2 core–shell composite

沸石 吸附 壳体(结构) 复合数 介孔材料 微型多孔材料 化学工程 扩散 涂层 傅里叶变换红外光谱 化学 材料科学 复合材料 催化作用 有机化学 工程类 物理 热力学
作者
Huijuan Liu,Keyan Wei,Chao Long
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:442: 136108-136108 被引量:16
标识
DOI:10.1016/j.cej.2022.136108
摘要

Y zeolite with high specific surface area and peculiar microporous channels has been regarded as a promising adsorbent in volatile organic compounds (VOCs) control. However, a scalable strategy for improving the hydrophobicity and mass diffusion of Y zeolite to remove VOCs remains a challenge. In this study, we successfully synthesized two [email protected]meso-SiO2 core–shell composites with different shell thicknesses by coating NaY zeolite with mesoporous SiO2 ([email protected]meso-SiO2-0.8 and [email protected]meso-SiO2-1.2), which significantly improved the hydrophobicity of NaY zeolite and diffusion of VOCs into NaY zeolite. The results of XRD, SEM, TEM, FTIR and BET confirmed the successful synthesis of core–shell composites. The adsorption equilibrium experiments showed that coating NaY zeolite with mesoporous SiO2 effectively enhanced the hydrophobicity of NaY zeolite. Under RH = 0, the adsorption capacity of pristine NaY zeolite was the highest; while under RH = 50%, [email protected]meso-SiO2-1.2 exhibited stronger adsorption ability and excellent hydrophobicity. The adsorption diffusion indicated that coating NaY zeolite with mesoporous SiO2 remarkably promoted the diffusion of VOCs into composites. Compared with the pristine NaY, core–shell composites showed higher diffusion coefficients and lower diffusion activation energy under RH = 0, particularly [email protected]meso-SiO2-1.2. In addition, linear solvation energy relationships (LSERs) revealed that π-/n-electron pairs interaction became weak and dipolar interactions were enhanced when water was adsorbed on the surface of [email protected]meso-SiO2-1.2. Hydrogen bonding decreased when RH level reached 50% and then increased with the increase of RH from 50% to 90%.
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