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Low temperature methanation of CO(2) over an amorphous cobalt-based catalyst

CO(2) methanation is an important reaction in CO(2) valorization. Because of the high kinetic barriers, the reaction usually needs to proceed at higher temperature (>300 °C). High-efficiency CO(2) methanation at low temperature (<200 °C) is an interesting topic, and only several noble metal ca...

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Autores principales: Tu, Jinghui, Wu, Haihong, Qian, Qingli, Han, Shitao, Chu, Mengen, Jia, Shuaiqiang, Feng, Ruting, Zhai, Jianxin, He, Mingyuan, Han, Buxing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179427/
https://www.ncbi.nlm.nih.gov/pubmed/34163663
http://dx.doi.org/10.1039/d0sc06414a
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author Tu, Jinghui
Wu, Haihong
Qian, Qingli
Han, Shitao
Chu, Mengen
Jia, Shuaiqiang
Feng, Ruting
Zhai, Jianxin
He, Mingyuan
Han, Buxing
author_facet Tu, Jinghui
Wu, Haihong
Qian, Qingli
Han, Shitao
Chu, Mengen
Jia, Shuaiqiang
Feng, Ruting
Zhai, Jianxin
He, Mingyuan
Han, Buxing
author_sort Tu, Jinghui
collection PubMed
description CO(2) methanation is an important reaction in CO(2) valorization. Because of the high kinetic barriers, the reaction usually needs to proceed at higher temperature (>300 °C). High-efficiency CO(2) methanation at low temperature (<200 °C) is an interesting topic, and only several noble metal catalysts were reported to achieve this goal. Currently, design of cheap metal catalysts that can effectively accelerate this reaction at low temperature is still a challenge. In this work, we found that the amorphous Co–Zr(0.1)–B–O catalyst could catalyze the reaction at above 140 °C. The activity of the catalyst at 180 °C reached 10.7 mmol(CO(2)) g(cat)(−1) h(−1), which is comparable to or even higher than that of some noble metal catalysts under similar conditions. The Zr promoter in this work had the highest promoting factor to date among the catalysts for CO(2) methanation. As far as we know, this is the first report of an amorphous transition metal catalyst that could effectively accelerate CO(2) methanation. The outstanding performance of the catalyst could be ascribed to two aspects. The amorphous nature of the catalyst offered abundant surface defects and intrinsic active sites. On the other hand, the Zr promoter could enlarge the surface area of the catalyst, enrich the Co atoms on the catalyst surface, and tune the valence state of the atoms at the catalyst surface. The reaction mechanism was proposed based on the control experiments.
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spelling pubmed-81794272021-06-22 Low temperature methanation of CO(2) over an amorphous cobalt-based catalyst Tu, Jinghui Wu, Haihong Qian, Qingli Han, Shitao Chu, Mengen Jia, Shuaiqiang Feng, Ruting Zhai, Jianxin He, Mingyuan Han, Buxing Chem Sci Chemistry CO(2) methanation is an important reaction in CO(2) valorization. Because of the high kinetic barriers, the reaction usually needs to proceed at higher temperature (>300 °C). High-efficiency CO(2) methanation at low temperature (<200 °C) is an interesting topic, and only several noble metal catalysts were reported to achieve this goal. Currently, design of cheap metal catalysts that can effectively accelerate this reaction at low temperature is still a challenge. In this work, we found that the amorphous Co–Zr(0.1)–B–O catalyst could catalyze the reaction at above 140 °C. The activity of the catalyst at 180 °C reached 10.7 mmol(CO(2)) g(cat)(−1) h(−1), which is comparable to or even higher than that of some noble metal catalysts under similar conditions. The Zr promoter in this work had the highest promoting factor to date among the catalysts for CO(2) methanation. As far as we know, this is the first report of an amorphous transition metal catalyst that could effectively accelerate CO(2) methanation. The outstanding performance of the catalyst could be ascribed to two aspects. The amorphous nature of the catalyst offered abundant surface defects and intrinsic active sites. On the other hand, the Zr promoter could enlarge the surface area of the catalyst, enrich the Co atoms on the catalyst surface, and tune the valence state of the atoms at the catalyst surface. The reaction mechanism was proposed based on the control experiments. The Royal Society of Chemistry 2021-01-15 /pmc/articles/PMC8179427/ /pubmed/34163663 http://dx.doi.org/10.1039/d0sc06414a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Tu, Jinghui
Wu, Haihong
Qian, Qingli
Han, Shitao
Chu, Mengen
Jia, Shuaiqiang
Feng, Ruting
Zhai, Jianxin
He, Mingyuan
Han, Buxing
Low temperature methanation of CO(2) over an amorphous cobalt-based catalyst
title Low temperature methanation of CO(2) over an amorphous cobalt-based catalyst
title_full Low temperature methanation of CO(2) over an amorphous cobalt-based catalyst
title_fullStr Low temperature methanation of CO(2) over an amorphous cobalt-based catalyst
title_full_unstemmed Low temperature methanation of CO(2) over an amorphous cobalt-based catalyst
title_short Low temperature methanation of CO(2) over an amorphous cobalt-based catalyst
title_sort low temperature methanation of co(2) over an amorphous cobalt-based catalyst
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8179427/
https://www.ncbi.nlm.nih.gov/pubmed/34163663
http://dx.doi.org/10.1039/d0sc06414a
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