Combined Effect of Oxygen Vacancies and Mesopore Sizes in ZnO/SiO2 Adsorbents on Boosting the H2S Removal Efficiency in Moist Conditions

材料科学 Boosting(机器学习) 介孔材料 氧气 吸附 化学工程 物理化学 催化作用 机器学习 有机化学 计算机科学 工程类 化学
作者
Chao Yang,Zhilong Liu,Zhelin Su,Yeshuang Wang,Meisheng Liang,Huiling Fan,Teresa J. Bandosz
出处
期刊:Advanced Functional Materials [Wiley]
被引量:1
标识
DOI:10.1002/adfm.202409214
摘要

Abstract While both pore sizes and oxygen vacancies benefit desulfurization on ZnO, their specific roles and the combined effect on the efficiency of this process are still unclear. To address this, ZnO‐based adsorbents with tunable mesopore sizes and concentrations of oxygen vacancies are synthesized. These two features are directly regulated through varying the carbon chain length of dihydric alcohol, which is used as a precursor in the synthesis process. They influenced the desulfurization performance through affecting the diffusion and dissociation of H 2 S. The sizes of mesopores determined the amounts of adsorbed water/ thickness of a water film while the amount of oxygen vacancies controlled the contents of hydroxyl groups. The latter not only are replaced by (bi)sulfide anions but also promote the dissociation of H 2 S through acid‐base interaction. Adsorbed water contributed to hydroxylation of the surface until the cease of desulfurization. However, too much‐adsorbed water increased the resistance of H 2 S diffusion through the water film to the surface of ZnO, deteriorating the performance. The optimal amounts of adsorbed water/thickness of water film and a sufficient amount of oxygen vacancies/hydroxyl groups are provided in the adsorbent with a mesopore size of ∼10 nm leading to a maximum H 2 S removal capacity of 151.9 mg g −1 .
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