4.8 Article

Understanding the Fundamentals of Microporosity Upgrading in Zeolites: Increasing Diffusion and Catalytic Performances

期刊

ADVANCED SCIENCE
卷 8, 期 17, 页码 -

出版社

WILEY
DOI: 10.1002/advs.202100001

关键词

density functional theory (DFT); HP Xe-129 NMR; microporosity upgrading; molecular diffusion; zeolites

资金

  1. National Natural Science Foundation of China [21706285, 21972142, 21991090, 21991091, 21991092, 21975285, 22022202]
  2. LiaoNing Revitalization Talents Program [XLYC1807227]
  3. International Partnership Program of Chinese Academy of Sciences [121421KYSB20180007]
  4. Qingdao Applied Basic Research Project [19-6-2-70-cg]
  5. Fundamental Research Funds for the Central Universities [18CX02013A]
  6. Thousand Talents Program for Foreign Experts [WQ20152100316]
  7. Sino-French joint LIA laboratory Zeolites
  8. Slovak Research and Development Agency [VEGA-1/0777/19, APVV-20-0127]
  9. Research and Development Operational Program - ERDF [26230120002, 26210120002]

向作者/读者索取更多资源

Hierarchical zeolites with upgraded microporosity enhance catalytic performance by facilitating intracrystalline molecular traffic. The formation of mesopores in zeolites starts by removing framework T atoms and propagating throughout the crystals. A new diffusion pathway for xenon in mesoporous zeolites has been proposed.
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 NH4F 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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