Cargando…

Recent Advances in Co(3)O(4)-Based Composites: Synthesis and Application in Combustion of Methane

In recent years, it has been found that adjusting the organizational structure of Co(3)O(4) through solid solution and other methods can effectively improve its catalytic performance for the oxidation of low concentration methane. Its catalytic activity is close to that of metal Pd, which is expecte...

Descripción completa

Detalles Bibliográficos
Autores principales: Wei, Xinfang, Kang, Jiawei, Gan, Lin, Wang, Wei, Yang, Lin, Wang, Dijia, Zhong, Ruixia, Qi, Jian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10343635/
https://www.ncbi.nlm.nih.gov/pubmed/37446434
http://dx.doi.org/10.3390/nano13131917
_version_ 1785072783886123008
author Wei, Xinfang
Kang, Jiawei
Gan, Lin
Wang, Wei
Yang, Lin
Wang, Dijia
Zhong, Ruixia
Qi, Jian
author_facet Wei, Xinfang
Kang, Jiawei
Gan, Lin
Wang, Wei
Yang, Lin
Wang, Dijia
Zhong, Ruixia
Qi, Jian
author_sort Wei, Xinfang
collection PubMed
description In recent years, it has been found that adjusting the organizational structure of Co(3)O(4) through solid solution and other methods can effectively improve its catalytic performance for the oxidation of low concentration methane. Its catalytic activity is close to that of metal Pd, which is expected to replace costly noble metal catalysts. Therefore, the in-depth research on the mechanism and methods of Co(3)O(4) microstructure regulation has very important academic value and economic benefits. In this paper, we reviewed the catalytic oxidation mechanism, microstructure regulation mechanism, and methods of nano-Co(3)O(4) on methane gas, which provides reference for the development of high-activity Co(3)O(4)-based methane combustion catalysts. Through literature investigation, it is found that the surface energy state of nano-Co(3)O(4) can be adjusted by loading of noble metals, resulting in the reduction of Co–O bond strength, thus accelerating the formation of reactive oxygen species chemical bonds, and improving its catalytic effect. Secondly, the use of metal oxides and non-metallic oxide carriers helps to disperse and stabilize cobalt ions, improve the structural elasticity of Co(3)O(4), and ultimately improve its catalytic performance. In addition, the performance of the catalyst can be improved by adjusting the microstructure of the composite catalyst and optimizing the preparation process. In this review, we summarize the catalytic mechanism and microstructure regulation of nano-Co(3)O(4) and its composite catalysts (embedded with noble metals or combined with metallic and nonmetallic oxides) for methane combustion. Notably, this review delves into the substance of measures that can be used to improve the catalytic performance of Co(3)O(4), highlighting the constructive role of components in composite catalysts that can improve the catalytic capacity of Co(3)O(4). Firstly, the research status of Co(3)O(4) composite catalyst is reviewed in this paper. It is hoped that relevant researchers can get inspiration from this paper and develop high-activity Co(3)O(4)-based methane combustion catalyst.
format Online
Article
Text
id pubmed-10343635
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-103436352023-07-14 Recent Advances in Co(3)O(4)-Based Composites: Synthesis and Application in Combustion of Methane Wei, Xinfang Kang, Jiawei Gan, Lin Wang, Wei Yang, Lin Wang, Dijia Zhong, Ruixia Qi, Jian Nanomaterials (Basel) Review In recent years, it has been found that adjusting the organizational structure of Co(3)O(4) through solid solution and other methods can effectively improve its catalytic performance for the oxidation of low concentration methane. Its catalytic activity is close to that of metal Pd, which is expected to replace costly noble metal catalysts. Therefore, the in-depth research on the mechanism and methods of Co(3)O(4) microstructure regulation has very important academic value and economic benefits. In this paper, we reviewed the catalytic oxidation mechanism, microstructure regulation mechanism, and methods of nano-Co(3)O(4) on methane gas, which provides reference for the development of high-activity Co(3)O(4)-based methane combustion catalysts. Through literature investigation, it is found that the surface energy state of nano-Co(3)O(4) can be adjusted by loading of noble metals, resulting in the reduction of Co–O bond strength, thus accelerating the formation of reactive oxygen species chemical bonds, and improving its catalytic effect. Secondly, the use of metal oxides and non-metallic oxide carriers helps to disperse and stabilize cobalt ions, improve the structural elasticity of Co(3)O(4), and ultimately improve its catalytic performance. In addition, the performance of the catalyst can be improved by adjusting the microstructure of the composite catalyst and optimizing the preparation process. In this review, we summarize the catalytic mechanism and microstructure regulation of nano-Co(3)O(4) and its composite catalysts (embedded with noble metals or combined with metallic and nonmetallic oxides) for methane combustion. Notably, this review delves into the substance of measures that can be used to improve the catalytic performance of Co(3)O(4), highlighting the constructive role of components in composite catalysts that can improve the catalytic capacity of Co(3)O(4). Firstly, the research status of Co(3)O(4) composite catalyst is reviewed in this paper. It is hoped that relevant researchers can get inspiration from this paper and develop high-activity Co(3)O(4)-based methane combustion catalyst. MDPI 2023-06-23 /pmc/articles/PMC10343635/ /pubmed/37446434 http://dx.doi.org/10.3390/nano13131917 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Wei, Xinfang
Kang, Jiawei
Gan, Lin
Wang, Wei
Yang, Lin
Wang, Dijia
Zhong, Ruixia
Qi, Jian
Recent Advances in Co(3)O(4)-Based Composites: Synthesis and Application in Combustion of Methane
title Recent Advances in Co(3)O(4)-Based Composites: Synthesis and Application in Combustion of Methane
title_full Recent Advances in Co(3)O(4)-Based Composites: Synthesis and Application in Combustion of Methane
title_fullStr Recent Advances in Co(3)O(4)-Based Composites: Synthesis and Application in Combustion of Methane
title_full_unstemmed Recent Advances in Co(3)O(4)-Based Composites: Synthesis and Application in Combustion of Methane
title_short Recent Advances in Co(3)O(4)-Based Composites: Synthesis and Application in Combustion of Methane
title_sort recent advances in co(3)o(4)-based composites: synthesis and application in combustion of methane
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10343635/
https://www.ncbi.nlm.nih.gov/pubmed/37446434
http://dx.doi.org/10.3390/nano13131917
work_keys_str_mv AT weixinfang recentadvancesinco3o4basedcompositessynthesisandapplicationincombustionofmethane
AT kangjiawei recentadvancesinco3o4basedcompositessynthesisandapplicationincombustionofmethane
AT ganlin recentadvancesinco3o4basedcompositessynthesisandapplicationincombustionofmethane
AT wangwei recentadvancesinco3o4basedcompositessynthesisandapplicationincombustionofmethane
AT yanglin recentadvancesinco3o4basedcompositessynthesisandapplicationincombustionofmethane
AT wangdijia recentadvancesinco3o4basedcompositessynthesisandapplicationincombustionofmethane
AT zhongruixia recentadvancesinco3o4basedcompositessynthesisandapplicationincombustionofmethane
AT qijian recentadvancesinco3o4basedcompositessynthesisandapplicationincombustionofmethane