volume 405-406 pages 111-124

Fundamental understanding and catalytic applications of hollow MFI-type zeolites

Ruoyu Wang 1
Changjiu Xia 1, 2
1
 
Research Institute of Petroleum Processing, Sinopec, Beijing 100083, China
2
 
State Key Laboratory of Catalytic Materials and Reaction Engineering, Beijing 100083, China
Publication typeJournal Article
Publication date2022-12-01
scimago Q1
wos Q1
SJR1.050
CiteScore11.2
Impact factor5.3
ISSN09205861, 18734308
General Chemistry
Catalysis
Abstract
In this review, we summarize the fundamental understanding and recent progresses on hollow MFI-type zeolite synthesis, hollow cavity formation mechanism, and mass transport/catalytic performance intensification, especially from the viewpoints of industrial application. Obviously, introduction of hollow cavities into the micropores of MFI-type zeolites significantly facilitates both internal mass transport and catalytic performance in many Brönsted or Lewis acid catalyzed reactions, i.e. catalytic oxidation, methanol to hydrocarbons and catalytic cracking reaction. It is majorly assigned to the shortened diffusion path length within zeolite crystal, while there is no change of external surface, thus leading to lower mass transport energy barrier. In general, hollow zeolites are synthesized by two strategies, including selective desilication method and in-situ dissolution-recrystallization (also remarked as crystalline rearrangement) method, ascribing to the reassembly of dissolved species with low aggregation under the effect of organic templates in hydrothermal conditions in latter process. Notably, selective dissolution is the driving force of these two synthesis routes, thus it is key to tune the composition and dispersion of framework elements and intracrystalline defects for controlling the size and distribution of internal hollow cavities. Moreover, through rearrangement, previously impregnated metal nanoparticles with tunable composition and size can be encapsulated within zeolite crystal, thus showing relatively high thermal stability and catalytic activity in catalytic oxidation reactions, selective hydrogenation, cross-coupling, esterification, and C 1 transformation. • Hollow MFI zeolites are prepared by selectivie desilication and in-situ dissolution-recrystallization methods. • Metal nanoparticles can be encapsulated in hollow zeolite crystal via in-situ dissolution-recrystallization method. • Hollow MFI zeolites exhibit excellent internal mass transport property, owing to the shortened diffusion path length. • Hollow cavities within MFI-type zeolites favor higher catalytic performance in many reactions.
Found 
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GOST Copy
Wang R. et al. Fundamental understanding and catalytic applications of hollow MFI-type zeolites // Catalysis Today. 2022. Vol. 405-406. pp. 111-124.
GOST all authors (up to 50) Copy
Wang R., Xia C., Peng B. Fundamental understanding and catalytic applications of hollow MFI-type zeolites // Catalysis Today. 2022. Vol. 405-406. pp. 111-124.
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RIS Copy
TY - JOUR
DO - 10.1016/j.cattod.2022.06.026
UR - https://doi.org/10.1016/j.cattod.2022.06.026
TI - Fundamental understanding and catalytic applications of hollow MFI-type zeolites
T2 - Catalysis Today
AU - Wang, Ruoyu
AU - Xia, Changjiu
AU - Peng, Bo
PY - 2022
DA - 2022/12/01
PB - Elsevier
SP - 111-124
VL - 405-406
SN - 0920-5861
SN - 1873-4308
ER -
BibTex
Cite this
BibTex (up to 50 authors) Copy
@article{2022_Wang,
author = {Ruoyu Wang and Changjiu Xia and Bo Peng},
title = {Fundamental understanding and catalytic applications of hollow MFI-type zeolites},
journal = {Catalysis Today},
year = {2022},
volume = {405-406},
publisher = {Elsevier},
month = {dec},
url = {https://doi.org/10.1016/j.cattod.2022.06.026},
pages = {111--124},
doi = {10.1016/j.cattod.2022.06.026}
}
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