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Recent progress of catalytic methane combustion over transition metal oxide catalysts

Methane (CH(4)) is one of the cleanest fossil fuel resources and is playing an increasingly indispensable role in our way to carbon neutrality, by providing less carbon-intensive heat and electricity worldwide. On the other hand, the atmospheric concentration of CH(4) has raced past 1,900 ppb in 202...

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Autores principales: Gao, Yuan, Jiang, Mingxin, Yang, Liuqingqing, Li, Zhuo, Tian, Fei-Xiang, He, Yulian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9393236/
https://www.ncbi.nlm.nih.gov/pubmed/36003612
http://dx.doi.org/10.3389/fchem.2022.959422
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author Gao, Yuan
Jiang, Mingxin
Yang, Liuqingqing
Li, Zhuo
Tian, Fei-Xiang
He, Yulian
author_facet Gao, Yuan
Jiang, Mingxin
Yang, Liuqingqing
Li, Zhuo
Tian, Fei-Xiang
He, Yulian
author_sort Gao, Yuan
collection PubMed
description Methane (CH(4)) is one of the cleanest fossil fuel resources and is playing an increasingly indispensable role in our way to carbon neutrality, by providing less carbon-intensive heat and electricity worldwide. On the other hand, the atmospheric concentration of CH(4) has raced past 1,900 ppb in 2021, almost triple its pre-industrial levels. As a greenhouse gas at least 86 times as potent as carbon dioxide (CO(2)) over 20 years, CH(4) is becoming a major threat to the global goal of deviating Earth temperature from the +2°C scenario. Consequently, all CH(4)-powered facilities must be strictly coupled with remediation plans for unburned CH(4) in the exhaust to avoid further exacerbating the environmental stress, among which catalytic CH(4) combustion (CMC) is one of the most effective strategies to solve this issue. Most current CMC catalysts are noble-metal-based owing to their outstanding C–H bond activation capability, while their high cost and poor thermal stability have driven the search for alternative options, among which transition metal oxide (TMO) catalysts have attracted extensive attention due to their Earth abundance, high thermal stability, variable oxidation states, rich acidic and basic sites, etc. To date, many TMO catalysts have shown comparable catalytic performance with that of noble metals, while their fundamental reaction mechanisms are explored to a much less extent and remain to be controversial, which hinders the further optimization of the TMO catalytic systems. Therefore, in this review, we provide a systematic compilation of the recent research advances in TMO-based CMC reactions, together with their detailed reaction mechanisms. We start with introducing the scientific fundamentals of the CMC reaction itself as well as the unique and desirable features of TMOs applied in CMC, followed by a detailed introduction of four different kinetic reaction models proposed for the reactions. Next, we categorize the TMOs of interests into single and hybrid systems, summarizing their specific morphology characterization, catalytic performance, kinetic properties, with special emphasis on the reaction mechanisms and interfacial properties. Finally, we conclude the review with a summary and outlook on the TMOs for practical CMC applications. In addition, we also further prospect the enormous potentials of TMOs in producing value-added chemicals beyond combustion, such as direct partial oxidation to methanol.
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spelling pubmed-93932362022-08-23 Recent progress of catalytic methane combustion over transition metal oxide catalysts Gao, Yuan Jiang, Mingxin Yang, Liuqingqing Li, Zhuo Tian, Fei-Xiang He, Yulian Front Chem Chemistry Methane (CH(4)) is one of the cleanest fossil fuel resources and is playing an increasingly indispensable role in our way to carbon neutrality, by providing less carbon-intensive heat and electricity worldwide. On the other hand, the atmospheric concentration of CH(4) has raced past 1,900 ppb in 2021, almost triple its pre-industrial levels. As a greenhouse gas at least 86 times as potent as carbon dioxide (CO(2)) over 20 years, CH(4) is becoming a major threat to the global goal of deviating Earth temperature from the +2°C scenario. Consequently, all CH(4)-powered facilities must be strictly coupled with remediation plans for unburned CH(4) in the exhaust to avoid further exacerbating the environmental stress, among which catalytic CH(4) combustion (CMC) is one of the most effective strategies to solve this issue. Most current CMC catalysts are noble-metal-based owing to their outstanding C–H bond activation capability, while their high cost and poor thermal stability have driven the search for alternative options, among which transition metal oxide (TMO) catalysts have attracted extensive attention due to their Earth abundance, high thermal stability, variable oxidation states, rich acidic and basic sites, etc. To date, many TMO catalysts have shown comparable catalytic performance with that of noble metals, while their fundamental reaction mechanisms are explored to a much less extent and remain to be controversial, which hinders the further optimization of the TMO catalytic systems. Therefore, in this review, we provide a systematic compilation of the recent research advances in TMO-based CMC reactions, together with their detailed reaction mechanisms. We start with introducing the scientific fundamentals of the CMC reaction itself as well as the unique and desirable features of TMOs applied in CMC, followed by a detailed introduction of four different kinetic reaction models proposed for the reactions. Next, we categorize the TMOs of interests into single and hybrid systems, summarizing their specific morphology characterization, catalytic performance, kinetic properties, with special emphasis on the reaction mechanisms and interfacial properties. Finally, we conclude the review with a summary and outlook on the TMOs for practical CMC applications. In addition, we also further prospect the enormous potentials of TMOs in producing value-added chemicals beyond combustion, such as direct partial oxidation to methanol. Frontiers Media S.A. 2022-08-08 /pmc/articles/PMC9393236/ /pubmed/36003612 http://dx.doi.org/10.3389/fchem.2022.959422 Text en Copyright © 2022 Gao, Jiang, Yang, Li, Tian and He. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Chemistry
Gao, Yuan
Jiang, Mingxin
Yang, Liuqingqing
Li, Zhuo
Tian, Fei-Xiang
He, Yulian
Recent progress of catalytic methane combustion over transition metal oxide catalysts
title Recent progress of catalytic methane combustion over transition metal oxide catalysts
title_full Recent progress of catalytic methane combustion over transition metal oxide catalysts
title_fullStr Recent progress of catalytic methane combustion over transition metal oxide catalysts
title_full_unstemmed Recent progress of catalytic methane combustion over transition metal oxide catalysts
title_short Recent progress of catalytic methane combustion over transition metal oxide catalysts
title_sort recent progress of catalytic methane combustion over transition metal oxide catalysts
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9393236/
https://www.ncbi.nlm.nih.gov/pubmed/36003612
http://dx.doi.org/10.3389/fchem.2022.959422
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