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Unlocking High-Efficiency Methane Oxidation with Bimetallic Pd–Ce Catalysts under Zeolite Confinement

[Image: see text] Catalytic complete oxidation is an efficient approach to reducing methane emissions, a significant contributor to global warming. This approach requires active catalysts that are highly resistant to sintering and water vapor. In this work, we demonstrate that Pd nanoparticles confi...

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Autores principales: Chen, Xiaomai, Shi, Xuefeng, Chen, Peirong, Liu, Bowen, Liu, Meiyin, Chen, Longwen, Ye, Daiqi, Tu, Xin, Fan, Wei, Wu, Junliang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10360205/
https://www.ncbi.nlm.nih.gov/pubmed/37483303
http://dx.doi.org/10.1021/acsenvironau.3c00008
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author Chen, Xiaomai
Shi, Xuefeng
Chen, Peirong
Liu, Bowen
Liu, Meiyin
Chen, Longwen
Ye, Daiqi
Tu, Xin
Fan, Wei
Wu, Junliang
author_facet Chen, Xiaomai
Shi, Xuefeng
Chen, Peirong
Liu, Bowen
Liu, Meiyin
Chen, Longwen
Ye, Daiqi
Tu, Xin
Fan, Wei
Wu, Junliang
author_sort Chen, Xiaomai
collection PubMed
description [Image: see text] Catalytic complete oxidation is an efficient approach to reducing methane emissions, a significant contributor to global warming. This approach requires active catalysts that are highly resistant to sintering and water vapor. In this work, we demonstrate that Pd nanoparticles confined within silicalite-1 zeolites (Pd@S-1), fabricated using a facile in situ encapsulation strategy, are highly active and stable in catalyzing methane oxidation and are superior to those supported on the S-1 surface due to a confinement effect. The activity of the confined Pd catalysts was further improved by co-confining a suitable amount of Ce within the S-1 zeolite (PdCe(0.4)@S-1), which is attributed to confinement-reinforced Pd–Ce interactions that promote the formation of oxygen vacancies and highly reactive oxygen species. Furthermore, the introduction of Ce improves the hydrophobicity of the S-1 zeolite and, by forming Pd–Ce mixed oxides, inhibits the transformation of the active PdO phase to inactive Pd(OH)(2) species. Overall, the bimetallic PdCe(0.4)@S-1 catalyst delivers exceptional outstanding activity and durability in complete methane oxidation, even in the presence of water vapor. This study may provide new prospects for the rational design of high-performance and durable Pd catalysts for complete methane oxidation.
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spelling pubmed-103602052023-07-22 Unlocking High-Efficiency Methane Oxidation with Bimetallic Pd–Ce Catalysts under Zeolite Confinement Chen, Xiaomai Shi, Xuefeng Chen, Peirong Liu, Bowen Liu, Meiyin Chen, Longwen Ye, Daiqi Tu, Xin Fan, Wei Wu, Junliang ACS Environ Au [Image: see text] Catalytic complete oxidation is an efficient approach to reducing methane emissions, a significant contributor to global warming. This approach requires active catalysts that are highly resistant to sintering and water vapor. In this work, we demonstrate that Pd nanoparticles confined within silicalite-1 zeolites (Pd@S-1), fabricated using a facile in situ encapsulation strategy, are highly active and stable in catalyzing methane oxidation and are superior to those supported on the S-1 surface due to a confinement effect. The activity of the confined Pd catalysts was further improved by co-confining a suitable amount of Ce within the S-1 zeolite (PdCe(0.4)@S-1), which is attributed to confinement-reinforced Pd–Ce interactions that promote the formation of oxygen vacancies and highly reactive oxygen species. Furthermore, the introduction of Ce improves the hydrophobicity of the S-1 zeolite and, by forming Pd–Ce mixed oxides, inhibits the transformation of the active PdO phase to inactive Pd(OH)(2) species. Overall, the bimetallic PdCe(0.4)@S-1 catalyst delivers exceptional outstanding activity and durability in complete methane oxidation, even in the presence of water vapor. This study may provide new prospects for the rational design of high-performance and durable Pd catalysts for complete methane oxidation. American Chemical Society 2023-05-16 /pmc/articles/PMC10360205/ /pubmed/37483303 http://dx.doi.org/10.1021/acsenvironau.3c00008 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Chen, Xiaomai
Shi, Xuefeng
Chen, Peirong
Liu, Bowen
Liu, Meiyin
Chen, Longwen
Ye, Daiqi
Tu, Xin
Fan, Wei
Wu, Junliang
Unlocking High-Efficiency Methane Oxidation with Bimetallic Pd–Ce Catalysts under Zeolite Confinement
title Unlocking High-Efficiency Methane Oxidation with Bimetallic Pd–Ce Catalysts under Zeolite Confinement
title_full Unlocking High-Efficiency Methane Oxidation with Bimetallic Pd–Ce Catalysts under Zeolite Confinement
title_fullStr Unlocking High-Efficiency Methane Oxidation with Bimetallic Pd–Ce Catalysts under Zeolite Confinement
title_full_unstemmed Unlocking High-Efficiency Methane Oxidation with Bimetallic Pd–Ce Catalysts under Zeolite Confinement
title_short Unlocking High-Efficiency Methane Oxidation with Bimetallic Pd–Ce Catalysts under Zeolite Confinement
title_sort unlocking high-efficiency methane oxidation with bimetallic pd–ce catalysts under zeolite confinement
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10360205/
https://www.ncbi.nlm.nih.gov/pubmed/37483303
http://dx.doi.org/10.1021/acsenvironau.3c00008
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