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Improved catalytic performance in gas-phase dimethyl ether carbonylation over facile NH(4)F etched ferrierite

Gas-phase dimethyl ether (DME) carbonylation to methyl acetate (MA) initiates a promising route for producing ethanol from syngas. Ferrierite (FER, ZSM-35) has received considerable attention as it displays excellent stability in the carbonylation reaction and its modification strategy is to improve...

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Autores principales: Zhang, Dexin, Li, Kang, Chen, Junli, Sun, Changyu, Li, Zhi, Lei, Jie, Ma, Qinlan, Zhang, Pan, Liu, Yong, Yang, Lin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10696424/
http://dx.doi.org/10.1039/d3ra07084k
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author Zhang, Dexin
Li, Kang
Chen, Junli
Sun, Changyu
Li, Zhi
Lei, Jie
Ma, Qinlan
Zhang, Pan
Liu, Yong
Yang, Lin
author_facet Zhang, Dexin
Li, Kang
Chen, Junli
Sun, Changyu
Li, Zhi
Lei, Jie
Ma, Qinlan
Zhang, Pan
Liu, Yong
Yang, Lin
author_sort Zhang, Dexin
collection PubMed
description Gas-phase dimethyl ether (DME) carbonylation to methyl acetate (MA) initiates a promising route for producing ethanol from syngas. Ferrierite (FER, ZSM-35) has received considerable attention as it displays excellent stability in the carbonylation reaction and its modification strategy is to improve its catalytic activity on the premise of maintaining its stability as much as possible. However, conventional post-treatment methods such as dealumination and desilication usually selectively remove framework Al or Si atoms, ultimately altering the intrinsic composition, crystallinity, and acidity of zeolites inevitably. In this study, we successfully prepared a series of hierarchical ZSM-35 materials through post-treatment with NH(4)F etching, which dissolved framework Al and Si at similar rates and preferentially attacked the defective sites. Interestingly, the produced pore systems effectively penetrated the [100] plane, offering elevated access to both the 8-membered ring (8-MR) and 10-membered ring (10-MR) channels. The physicochemical and acid properties of the pristine and NH(4)F etched ZSM-35 samples were comprehensively characterized using various techniques, including XRD, XRF, FESEM, HRTEM, Nitrogen adsorption–desorption, NH(3)-TPD, Py-IR, (27)Al MAS NMR, and (29)Si MAS NMR. Under moderate treatment conditions, the intrinsic microporous structure, acid properties, and crystallinity of zeolite were retained, leading to superior catalytic activity and stability with respect to the pristine sample. Nonetheless, severe NH(4)F etching disrupted the crystalline framework and created additional defective sites, bringing about faster deposition of coke precursors on the interior Brønsted acid sites (BAS) and decreased catalytic performance. This technique provides a novel and efficient method to slightly enhance the micropore and mesopore volume of industrially pertinent zeolites through a straightforward post-treatment, thus elevating the catalytic performance of these zeolites.
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spelling pubmed-106964242023-12-06 Improved catalytic performance in gas-phase dimethyl ether carbonylation over facile NH(4)F etched ferrierite Zhang, Dexin Li, Kang Chen, Junli Sun, Changyu Li, Zhi Lei, Jie Ma, Qinlan Zhang, Pan Liu, Yong Yang, Lin RSC Adv Chemistry Gas-phase dimethyl ether (DME) carbonylation to methyl acetate (MA) initiates a promising route for producing ethanol from syngas. Ferrierite (FER, ZSM-35) has received considerable attention as it displays excellent stability in the carbonylation reaction and its modification strategy is to improve its catalytic activity on the premise of maintaining its stability as much as possible. However, conventional post-treatment methods such as dealumination and desilication usually selectively remove framework Al or Si atoms, ultimately altering the intrinsic composition, crystallinity, and acidity of zeolites inevitably. In this study, we successfully prepared a series of hierarchical ZSM-35 materials through post-treatment with NH(4)F etching, which dissolved framework Al and Si at similar rates and preferentially attacked the defective sites. Interestingly, the produced pore systems effectively penetrated the [100] plane, offering elevated access to both the 8-membered ring (8-MR) and 10-membered ring (10-MR) channels. The physicochemical and acid properties of the pristine and NH(4)F etched ZSM-35 samples were comprehensively characterized using various techniques, including XRD, XRF, FESEM, HRTEM, Nitrogen adsorption–desorption, NH(3)-TPD, Py-IR, (27)Al MAS NMR, and (29)Si MAS NMR. Under moderate treatment conditions, the intrinsic microporous structure, acid properties, and crystallinity of zeolite were retained, leading to superior catalytic activity and stability with respect to the pristine sample. Nonetheless, severe NH(4)F etching disrupted the crystalline framework and created additional defective sites, bringing about faster deposition of coke precursors on the interior Brønsted acid sites (BAS) and decreased catalytic performance. This technique provides a novel and efficient method to slightly enhance the micropore and mesopore volume of industrially pertinent zeolites through a straightforward post-treatment, thus elevating the catalytic performance of these zeolites. The Royal Society of Chemistry 2023-12-05 /pmc/articles/PMC10696424/ http://dx.doi.org/10.1039/d3ra07084k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhang, Dexin
Li, Kang
Chen, Junli
Sun, Changyu
Li, Zhi
Lei, Jie
Ma, Qinlan
Zhang, Pan
Liu, Yong
Yang, Lin
Improved catalytic performance in gas-phase dimethyl ether carbonylation over facile NH(4)F etched ferrierite
title Improved catalytic performance in gas-phase dimethyl ether carbonylation over facile NH(4)F etched ferrierite
title_full Improved catalytic performance in gas-phase dimethyl ether carbonylation over facile NH(4)F etched ferrierite
title_fullStr Improved catalytic performance in gas-phase dimethyl ether carbonylation over facile NH(4)F etched ferrierite
title_full_unstemmed Improved catalytic performance in gas-phase dimethyl ether carbonylation over facile NH(4)F etched ferrierite
title_short Improved catalytic performance in gas-phase dimethyl ether carbonylation over facile NH(4)F etched ferrierite
title_sort improved catalytic performance in gas-phase dimethyl ether carbonylation over facile nh(4)f etched ferrierite
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10696424/
http://dx.doi.org/10.1039/d3ra07084k
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