介孔材料
八角石
方解石
催化作用
扩散
化学工程
材料科学
多孔性
沸石
化学
热力学
有机化学
复合材料
工程类
物理
作者
Zhengxing Qin,Shu Zeng,Georgian Melinte,Tomáš Bučko,Michaël Badawi,Yanfeng Shen,Jean‐Pierre Gilson,Ovidiu Ersen,Yingxu Wei,Zhongmin Liu,Xinmei Liu,Zifeng Yan,Shutao Xu,Valentin Valtchev,Svetlana Mintova
标识
DOI:10.1002/advs.202100001
摘要
Abstract Hierarchical zeolites are regarded as promising catalysts due to their well‐developed porosity, increased accessible surface area, and minimal diffusion constraints. Thus far, the focus has been on the creation of mesopores in zeolites, however, little is known about a microporosity upgrading and its effect on the diffusion and catalytic performance. Here the authors show that the “birth” of mesopore formation in faujasite (FAU) type zeolite starts by removing framework T atoms from the sodalite (SOD) cages followed by propagation throughout the crystals. This is evidenced by following the diffusion of xenon (Xe) in the mesoporous FAU zeolite prepared by unbiased leaching with NH 4 F in comparison to the pristine FAU zeolite. A new diffusion pathway for the Xe in the mesoporous zeolite is proposed. Xenon first penetrates through the opened SOD cages and then diffuses to supercages of the mesoporous zeolite. Density functional theory (DFT) calculations indicate that Xe diffusion between SOD cage and supercage occurs only in hierarchical FAU structure with defect‐contained six‐member‐ring separating these two types of cages. The catalytic performance of the mesoporous FAU zeolite further indicates that the upgraded microporosity facilitates the intracrystalline molecular traffic and increases the catalytic performance.
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