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Methanol-to-hydrocarbons conversion over MoO(3)/H-ZSM-5 catalysts prepared via lower temperature calcination: a route to tailor the distribution and evolution of promoter Mo species, and their corresponding catalytic properties

A series of MoO(3)/H-ZSM-5 (Si/Al = 25) catalysts were prepared via calcination at a lower-than-usual temperature (400 °C) and subsequently evaluated in the methanol-to-hydrocarbon reaction at that same temperature. The catalytic properties of those catalysts were compared with the sample prepared a...

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Autores principales: Liu, Bonan, France, Liam, Wu, Chen, Jiang, Zheng, Kuznetsov, Vladimir L., Al-Megren, Hamid A., Al-Kinany, Mohammed, Aldrees, Saud A., Xiao, Tiancun, Edwards, Peter P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5667184/
https://www.ncbi.nlm.nih.gov/pubmed/29142734
http://dx.doi.org/10.1039/c5sc01825k
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author Liu, Bonan
France, Liam
Wu, Chen
Jiang, Zheng
Kuznetsov, Vladimir L.
Al-Megren, Hamid A.
Al-Kinany, Mohammed
Aldrees, Saud A.
Xiao, Tiancun
Edwards, Peter P.
author_facet Liu, Bonan
France, Liam
Wu, Chen
Jiang, Zheng
Kuznetsov, Vladimir L.
Al-Megren, Hamid A.
Al-Kinany, Mohammed
Aldrees, Saud A.
Xiao, Tiancun
Edwards, Peter P.
author_sort Liu, Bonan
collection PubMed
description A series of MoO(3)/H-ZSM-5 (Si/Al = 25) catalysts were prepared via calcination at a lower-than-usual temperature (400 °C) and subsequently evaluated in the methanol-to-hydrocarbon reaction at that same temperature. The catalytic properties of those catalysts were compared with the sample prepared at the more conventional, higher temperature of 500 °C. For the lower temperature preparations, molybdenum oxide was preferentially dispersed over the zeolite external surface, while only the higher loading level of MoO(3) (7.5 wt% or higher) led to observable inner migration of the Mo species into the zeolite channels, with concomitant partial loss of the zeolite Brønsted acidity. On the MoO(3) modified samples, the early-period gas yield, especially for valuable propylene and C(4) products, was noticeably accelerated, and is gradually converted into an enhanced liquid aromatic formation. The 7.5 wt% MoO(3)/H-ZSM-5 sample prepared at 400 °C thereby achieved a balance between the zeolite surface dispersion of Mo species, their inner channel migration and the corresponding effect on the intrinsic Brønsted acidity of the acidic zeolite. That loading level also possessed the highest product selectivity (after 5 h reaction) to benzene, toluene and xylenes, as well as higher early-time valuable gas product yields in time-on-stream experiments. However, MoO(3) loading levels of 7.5 wt% and above also resulted in earlier catalyst deactivation by enhanced coke accumulation at, or near, the zeolite channel openings. Our research illustrates that the careful adoption of moderate/lower temperature dispersion processes for zeolite catalyst modification gives considerable potential for tailoring and optimizing the system's catalytic performance.
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spelling pubmed-56671842017-11-15 Methanol-to-hydrocarbons conversion over MoO(3)/H-ZSM-5 catalysts prepared via lower temperature calcination: a route to tailor the distribution and evolution of promoter Mo species, and their corresponding catalytic properties Liu, Bonan France, Liam Wu, Chen Jiang, Zheng Kuznetsov, Vladimir L. Al-Megren, Hamid A. Al-Kinany, Mohammed Aldrees, Saud A. Xiao, Tiancun Edwards, Peter P. Chem Sci Chemistry A series of MoO(3)/H-ZSM-5 (Si/Al = 25) catalysts were prepared via calcination at a lower-than-usual temperature (400 °C) and subsequently evaluated in the methanol-to-hydrocarbon reaction at that same temperature. The catalytic properties of those catalysts were compared with the sample prepared at the more conventional, higher temperature of 500 °C. For the lower temperature preparations, molybdenum oxide was preferentially dispersed over the zeolite external surface, while only the higher loading level of MoO(3) (7.5 wt% or higher) led to observable inner migration of the Mo species into the zeolite channels, with concomitant partial loss of the zeolite Brønsted acidity. On the MoO(3) modified samples, the early-period gas yield, especially for valuable propylene and C(4) products, was noticeably accelerated, and is gradually converted into an enhanced liquid aromatic formation. The 7.5 wt% MoO(3)/H-ZSM-5 sample prepared at 400 °C thereby achieved a balance between the zeolite surface dispersion of Mo species, their inner channel migration and the corresponding effect on the intrinsic Brønsted acidity of the acidic zeolite. That loading level also possessed the highest product selectivity (after 5 h reaction) to benzene, toluene and xylenes, as well as higher early-time valuable gas product yields in time-on-stream experiments. However, MoO(3) loading levels of 7.5 wt% and above also resulted in earlier catalyst deactivation by enhanced coke accumulation at, or near, the zeolite channel openings. Our research illustrates that the careful adoption of moderate/lower temperature dispersion processes for zeolite catalyst modification gives considerable potential for tailoring and optimizing the system's catalytic performance. Royal Society of Chemistry 2015-09-01 2015-06-11 /pmc/articles/PMC5667184/ /pubmed/29142734 http://dx.doi.org/10.1039/c5sc01825k Text en This journal is © The Royal Society of Chemistry 2015 http://creativecommons.org/licenses/by/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution 3.0 Unported License (http://creativecommons.org/licenses/by/3.0/) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Chemistry
Liu, Bonan
France, Liam
Wu, Chen
Jiang, Zheng
Kuznetsov, Vladimir L.
Al-Megren, Hamid A.
Al-Kinany, Mohammed
Aldrees, Saud A.
Xiao, Tiancun
Edwards, Peter P.
Methanol-to-hydrocarbons conversion over MoO(3)/H-ZSM-5 catalysts prepared via lower temperature calcination: a route to tailor the distribution and evolution of promoter Mo species, and their corresponding catalytic properties
title Methanol-to-hydrocarbons conversion over MoO(3)/H-ZSM-5 catalysts prepared via lower temperature calcination: a route to tailor the distribution and evolution of promoter Mo species, and their corresponding catalytic properties
title_full Methanol-to-hydrocarbons conversion over MoO(3)/H-ZSM-5 catalysts prepared via lower temperature calcination: a route to tailor the distribution and evolution of promoter Mo species, and their corresponding catalytic properties
title_fullStr Methanol-to-hydrocarbons conversion over MoO(3)/H-ZSM-5 catalysts prepared via lower temperature calcination: a route to tailor the distribution and evolution of promoter Mo species, and their corresponding catalytic properties
title_full_unstemmed Methanol-to-hydrocarbons conversion over MoO(3)/H-ZSM-5 catalysts prepared via lower temperature calcination: a route to tailor the distribution and evolution of promoter Mo species, and their corresponding catalytic properties
title_short Methanol-to-hydrocarbons conversion over MoO(3)/H-ZSM-5 catalysts prepared via lower temperature calcination: a route to tailor the distribution and evolution of promoter Mo species, and their corresponding catalytic properties
title_sort methanol-to-hydrocarbons conversion over moo(3)/h-zsm-5 catalysts prepared via lower temperature calcination: a route to tailor the distribution and evolution of promoter mo species, and their corresponding catalytic properties
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5667184/
https://www.ncbi.nlm.nih.gov/pubmed/29142734
http://dx.doi.org/10.1039/c5sc01825k
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