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Design of a core–shell catalyst: an effective strategy for suppressing side reactions in syngas for direct selective conversion to light olefins

An elegant catalyst is designed via the encapsulation of metallic oxide Zn–Cr inside of zeolite SAPO34 as a core–shell structure (Zn–Cr@SAPO) to realize the coupling of methanol-synthesis and methanol-to-olefin reactions. It can not only break through the limitation of the Anderson–Schulz–Flory dist...

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Detalles Bibliográficos
Autores principales: Tan, Li, Wang, Fan, Zhang, Peipei, Suzuki, Yuichi, Wu, Yingquan, Chen, Jiangang, Yang, Guohui, Tsubaki, Noritatsu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8152783/
https://www.ncbi.nlm.nih.gov/pubmed/34122875
http://dx.doi.org/10.1039/c9sc05544d
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author Tan, Li
Wang, Fan
Zhang, Peipei
Suzuki, Yuichi
Wu, Yingquan
Chen, Jiangang
Yang, Guohui
Tsubaki, Noritatsu
author_facet Tan, Li
Wang, Fan
Zhang, Peipei
Suzuki, Yuichi
Wu, Yingquan
Chen, Jiangang
Yang, Guohui
Tsubaki, Noritatsu
author_sort Tan, Li
collection PubMed
description An elegant catalyst is designed via the encapsulation of metallic oxide Zn–Cr inside of zeolite SAPO34 as a core–shell structure (Zn–Cr@SAPO) to realize the coupling of methanol-synthesis and methanol-to-olefin reactions. It can not only break through the limitation of the Anderson–Schulz–Flory distribution but can also overcome the disadvantages of physical mixture catalysts, such as excessive CO(2) formation. The confinement effect, hierarchical structure and extremely short distance between the two active components result in the Zn–Cr@SAPO capsule catalyst having better mass transfer and diffusion with a boosted synergistic effect. Due to the difference between the adsorption energies of the Zn–Cr metallic oxide/SAPO zeolite physical mixture and capsule catalysts, the produced water and light olefins are easily removed from the Zn–Cr@SAPO capsule catalyst after formation, suppressing the side reactions. The light olefin space time yield (STY) of the capsule catalyst is more than twice that of the typical physical mixture catalyst. The designed capsule catalyst has superior potential for scale-up in industrial applications while simultaneously extending the capabilities of hybrid catalysts for other tandem catalysis reactions through this strategy.
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spelling pubmed-81527832021-06-11 Design of a core–shell catalyst: an effective strategy for suppressing side reactions in syngas for direct selective conversion to light olefins Tan, Li Wang, Fan Zhang, Peipei Suzuki, Yuichi Wu, Yingquan Chen, Jiangang Yang, Guohui Tsubaki, Noritatsu Chem Sci Chemistry An elegant catalyst is designed via the encapsulation of metallic oxide Zn–Cr inside of zeolite SAPO34 as a core–shell structure (Zn–Cr@SAPO) to realize the coupling of methanol-synthesis and methanol-to-olefin reactions. It can not only break through the limitation of the Anderson–Schulz–Flory distribution but can also overcome the disadvantages of physical mixture catalysts, such as excessive CO(2) formation. The confinement effect, hierarchical structure and extremely short distance between the two active components result in the Zn–Cr@SAPO capsule catalyst having better mass transfer and diffusion with a boosted synergistic effect. Due to the difference between the adsorption energies of the Zn–Cr metallic oxide/SAPO zeolite physical mixture and capsule catalysts, the produced water and light olefins are easily removed from the Zn–Cr@SAPO capsule catalyst after formation, suppressing the side reactions. The light olefin space time yield (STY) of the capsule catalyst is more than twice that of the typical physical mixture catalyst. The designed capsule catalyst has superior potential for scale-up in industrial applications while simultaneously extending the capabilities of hybrid catalysts for other tandem catalysis reactions through this strategy. The Royal Society of Chemistry 2020-03-18 /pmc/articles/PMC8152783/ /pubmed/34122875 http://dx.doi.org/10.1039/c9sc05544d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Tan, Li
Wang, Fan
Zhang, Peipei
Suzuki, Yuichi
Wu, Yingquan
Chen, Jiangang
Yang, Guohui
Tsubaki, Noritatsu
Design of a core–shell catalyst: an effective strategy for suppressing side reactions in syngas for direct selective conversion to light olefins
title Design of a core–shell catalyst: an effective strategy for suppressing side reactions in syngas for direct selective conversion to light olefins
title_full Design of a core–shell catalyst: an effective strategy for suppressing side reactions in syngas for direct selective conversion to light olefins
title_fullStr Design of a core–shell catalyst: an effective strategy for suppressing side reactions in syngas for direct selective conversion to light olefins
title_full_unstemmed Design of a core–shell catalyst: an effective strategy for suppressing side reactions in syngas for direct selective conversion to light olefins
title_short Design of a core–shell catalyst: an effective strategy for suppressing side reactions in syngas for direct selective conversion to light olefins
title_sort design of a core–shell catalyst: an effective strategy for suppressing side reactions in syngas for direct selective conversion to light olefins
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8152783/
https://www.ncbi.nlm.nih.gov/pubmed/34122875
http://dx.doi.org/10.1039/c9sc05544d
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