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Platelike MFI Crystals with Controlled Crystal Faces Aspect Ratio
Author(s) -
Weijiong Dai,
Cassandre Kouvatas,
Wenshu Tai,
Guangjun Wu,
Naijia Guan,
Landong Li,
Valentin Valtchev
Publication year - 2021
Publication title -
journal of the american chemical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 7.115
H-Index - 612
eISSN - 1520-5126
pISSN - 0002-7863
DOI - 10.1021/jacs.0c11784
Subject(s) - zeolite , chemistry , crystallization , crystal (programming language) , nanometre , diffusion , catalysis , chemical engineering , zsm 5 , micrometer , stoichiometry , crystal growth , nanotechnology , methanol , crystallography , organic chemistry , materials science , optics , engineering , thermodynamics , physics , computer science , programming language
Zeolite crystals offering a short diffusion pathway through the pore network are highly desired for a number of catalytic and molecule separation applications. Herein, we develop a simple synthetic strategy toward reducing the thickness along the b- axis of MFI-type crystals, thus providing a short diffusion path along the straight channel. Our approach combines preliminary aging and a fluoride-assisted low-temperature crystallization. The synthesized MFI crystals are in the micrometer-size range along the a - and c- axis, while the thickness along the b -axis is a few tens of nanometers. The synthesis parameters controlling the formation of platelike zeolite are studied, and the factors controlling the zeolite growth are identified. The synthesis strategy works equally well with all-silica MFI (silicalite-1) and its Al- and Ga-containing derivatives. The catalytic activity of platelike ZSM-5 in the methanol-to-hydrocarbons (MTH) reaction is compared with a commercial nanosized ZSM-5 sample, as the platelike ZSM-5 exhibits a substantially extended lifetime. The synthesis of platelike MFI crystals is successfully scaled up to a kilogram scale.

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