4.8 Article

Dynamic confinement of SAPO-17 cages on the selectivity control of syngas conversion

期刊

NATIONAL SCIENCE REVIEW
卷 9, 期 9, 页码 -

出版社

OXFORD UNIV PRESS
DOI: 10.1093/nsr/nwac146

关键词

syngas conversion; OXZEO; dynamic confinement; zeolite; diffusion

资金

  1. Ministry of Science and Technology of China [2018YFA0704503]
  2. National Natural Science Foundation of China [91945302, 22002153]
  3. Youth Innovation Promotion Association of the Chinese Academy of Sciences [2019184]
  4. Natural Science Foundation of Liaoning Province [2020-BS-019]
  5. Dalian Science and Technology Innovation Fund [2020JJ26GX028]

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This study reports the dynamic confinement of SAPO-17 cages on the selectivity control of syngas conversion during an induction period. The evolution of carbonaceous species reduces the effective space inside the cages, hindering the diffusion of molecules, especially larger ones. As a result, the selectivity of ethylene is enhanced while the selectivity of C4+ is suppressed.
This work reports for the first time a dynamic confinement of SAPO-17 cages on the selectivity control of syngas conversion observed during an induction period. The OXZEO (oxide-zeolite) bifunctional catalyst concept has enabled selective syngas conversion to a series of value-added chemicals and fuels such as light olefins, aromatics and gasoline. Herein we report for the first time a dynamic confinement of SAPO-17 cages on the selectivity control of syngas conversion observed during an induction period. Structured illumination microscopy, intelligent gravimetric analysis, UV-Raman, X-ray diffraction, thermogravimetry and gas chromatography-mass spectrometer analysis indicate that this is attributed to the evolution of carbonaceous species as the reaction proceeds, which gradually reduces the effective space inside the cage. Consequently, the diffusion of molecules is hindered and the hindering is much more prominent for larger molecules such as C4+. As a result, the selectivity of ethylene is enhanced whereas that of C4+ is suppressed. Beyond the induction period, the product selectivity levels off. For instance, ethylene selectivity levels off at 44% and propylene selectivity at 31%, as well as CO conversion at 27%. The findings here bring a new fundamental understanding that will guide further development of selective catalysts for olefin synthesis based on the OXZEO concept.

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