Finned zeolite catalysts

Publication date

2020-10

Authors

Dai, Heng
Shen, Yufeng
Yang, Taimin
Lee, Choongsze
Fu, Donglong
Agarwal, Ankur
Le, Thuy Thanh
Tsapatsis, Michael
Palmer, Jeremy C.
Weckhuysen, B.M.ORCID 0000-0001-5245-1426ISNI 0000000110540180

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Advisors

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Document Type

Article
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Abstract

There is growing evidence for the advantages of synthesizing nanosized zeolites with markedly reduced internal diffusion limitations for enhanced performances in catalysis and adsorption. Producing zeolite crystals with sizes less than 100 nm, however, is non-trivial, often requires the use of complex organics and typically results in a small product yield. Here we present an alternative, facile approach to enhance the mass-transport properties of zeolites by the epitaxial growth of fin-like protrusions on seed crystals. We validate this generalizable methodology on two common zeolites and confirm that fins are in crystallographic registry with the underlying seeds, and that secondary growth does not impede access to the micropores. Molecular modelling and time-resolved titration experiments of finned zeolites probe internal diffusion and reveal substantial improvements in mass transport, consistent with catalytic tests of a model reaction, which show that these structures behave as pseudo-nanocrystals with sizes commensurate to that of the fin. This approach could be extended to the rational synthesis of other zeolite and aluminosilicate materials.

Keywords

Taverne, General Chemistry, General Materials Science, Condensed Matter Physics, Mechanics of Materials, Mechanical Engineering

Citation

Dai, H, Shen, Y, Yang, T, Lee, C, Fu, D, Agarwal, A, Le, T T, Tsapatsis, M, Palmer, J C, Weckhuysen, B M, Dauenhauer, P J, Zou, X & Rimer, J D 2020, 'Finned zeolite catalysts', Nature Materials, vol. 19, no. 10, pp. 1074-1080. https://doi.org/10.1038/s41563-020-0753-1