Cargando…

Template-free Synthesis of Stable Cobalt Manganese Spinel Hollow Nanostructured Catalysts for Highly Water-Resistant CO Oxidation

Development of spinel oxides as low-cost and high-efficiency catalysts is highly desirable; however, rational synthesis of efficient and stable spinel systems with precisely controlled structure and components remains challenging. We demonstrate the design of complex nanostructured cobalt-based bime...

Descripción completa

Detalles Bibliográficos
Autores principales: Xu, Zehai, Zhang, Yufan, Li, Xiong, Qin, Lei, Meng, Qin, Zhang, Guoliang, Fan, Zheng, Xue, Zhen, Guo, Xinwen, Liu, Qinglin, Li, Qingbiao, Mao, Baohua, Liu, Zhi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6820238/
https://www.ncbi.nlm.nih.gov/pubmed/31654851
http://dx.doi.org/10.1016/j.isci.2019.10.013
_version_ 1783463894833954816
author Xu, Zehai
Zhang, Yufan
Li, Xiong
Qin, Lei
Meng, Qin
Zhang, Guoliang
Fan, Zheng
Xue, Zhen
Guo, Xinwen
Liu, Qinglin
Li, Qingbiao
Mao, Baohua
Liu, Zhi
author_facet Xu, Zehai
Zhang, Yufan
Li, Xiong
Qin, Lei
Meng, Qin
Zhang, Guoliang
Fan, Zheng
Xue, Zhen
Guo, Xinwen
Liu, Qinglin
Li, Qingbiao
Mao, Baohua
Liu, Zhi
author_sort Xu, Zehai
collection PubMed
description Development of spinel oxides as low-cost and high-efficiency catalysts is highly desirable; however, rational synthesis of efficient and stable spinel systems with precisely controlled structure and components remains challenging. We demonstrate the design of complex nanostructured cobalt-based bimetallic spinel catalysts for low-temperature CO oxidation by a simple template-free method. The self-assembled multi-shelled mesoporous spinel nanostructures provide high surface area (203.5 m(2)/g) and favorable unique surface chemistry for producing abundant active sites and lead to the creation of robust microsphere configured by 16-nm spinel nanosheets, which achieve satisfactory water-resisting property and catalytic activity. Theoretical models show that O vacancies at exposed {110} facets in cubic spinel phase guarantee the strong adsorption of reactive oxygen species on the surface of catalysts and play a key role in the prevention of deactivation under moisture-rich conditions. The design concept with architecture and composition control can be extended to other mixed transition metal oxide compositions.
format Online
Article
Text
id pubmed-6820238
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-68202382019-11-04 Template-free Synthesis of Stable Cobalt Manganese Spinel Hollow Nanostructured Catalysts for Highly Water-Resistant CO Oxidation Xu, Zehai Zhang, Yufan Li, Xiong Qin, Lei Meng, Qin Zhang, Guoliang Fan, Zheng Xue, Zhen Guo, Xinwen Liu, Qinglin Li, Qingbiao Mao, Baohua Liu, Zhi iScience Article Development of spinel oxides as low-cost and high-efficiency catalysts is highly desirable; however, rational synthesis of efficient and stable spinel systems with precisely controlled structure and components remains challenging. We demonstrate the design of complex nanostructured cobalt-based bimetallic spinel catalysts for low-temperature CO oxidation by a simple template-free method. The self-assembled multi-shelled mesoporous spinel nanostructures provide high surface area (203.5 m(2)/g) and favorable unique surface chemistry for producing abundant active sites and lead to the creation of robust microsphere configured by 16-nm spinel nanosheets, which achieve satisfactory water-resisting property and catalytic activity. Theoretical models show that O vacancies at exposed {110} facets in cubic spinel phase guarantee the strong adsorption of reactive oxygen species on the surface of catalysts and play a key role in the prevention of deactivation under moisture-rich conditions. The design concept with architecture and composition control can be extended to other mixed transition metal oxide compositions. Elsevier 2019-10-09 /pmc/articles/PMC6820238/ /pubmed/31654851 http://dx.doi.org/10.1016/j.isci.2019.10.013 Text en © 2019 The Author(s) http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Xu, Zehai
Zhang, Yufan
Li, Xiong
Qin, Lei
Meng, Qin
Zhang, Guoliang
Fan, Zheng
Xue, Zhen
Guo, Xinwen
Liu, Qinglin
Li, Qingbiao
Mao, Baohua
Liu, Zhi
Template-free Synthesis of Stable Cobalt Manganese Spinel Hollow Nanostructured Catalysts for Highly Water-Resistant CO Oxidation
title Template-free Synthesis of Stable Cobalt Manganese Spinel Hollow Nanostructured Catalysts for Highly Water-Resistant CO Oxidation
title_full Template-free Synthesis of Stable Cobalt Manganese Spinel Hollow Nanostructured Catalysts for Highly Water-Resistant CO Oxidation
title_fullStr Template-free Synthesis of Stable Cobalt Manganese Spinel Hollow Nanostructured Catalysts for Highly Water-Resistant CO Oxidation
title_full_unstemmed Template-free Synthesis of Stable Cobalt Manganese Spinel Hollow Nanostructured Catalysts for Highly Water-Resistant CO Oxidation
title_short Template-free Synthesis of Stable Cobalt Manganese Spinel Hollow Nanostructured Catalysts for Highly Water-Resistant CO Oxidation
title_sort template-free synthesis of stable cobalt manganese spinel hollow nanostructured catalysts for highly water-resistant co oxidation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6820238/
https://www.ncbi.nlm.nih.gov/pubmed/31654851
http://dx.doi.org/10.1016/j.isci.2019.10.013
work_keys_str_mv AT xuzehai templatefreesynthesisofstablecobaltmanganesespinelhollownanostructuredcatalystsforhighlywaterresistantcooxidation
AT zhangyufan templatefreesynthesisofstablecobaltmanganesespinelhollownanostructuredcatalystsforhighlywaterresistantcooxidation
AT lixiong templatefreesynthesisofstablecobaltmanganesespinelhollownanostructuredcatalystsforhighlywaterresistantcooxidation
AT qinlei templatefreesynthesisofstablecobaltmanganesespinelhollownanostructuredcatalystsforhighlywaterresistantcooxidation
AT mengqin templatefreesynthesisofstablecobaltmanganesespinelhollownanostructuredcatalystsforhighlywaterresistantcooxidation
AT zhangguoliang templatefreesynthesisofstablecobaltmanganesespinelhollownanostructuredcatalystsforhighlywaterresistantcooxidation
AT fanzheng templatefreesynthesisofstablecobaltmanganesespinelhollownanostructuredcatalystsforhighlywaterresistantcooxidation
AT xuezhen templatefreesynthesisofstablecobaltmanganesespinelhollownanostructuredcatalystsforhighlywaterresistantcooxidation
AT guoxinwen templatefreesynthesisofstablecobaltmanganesespinelhollownanostructuredcatalystsforhighlywaterresistantcooxidation
AT liuqinglin templatefreesynthesisofstablecobaltmanganesespinelhollownanostructuredcatalystsforhighlywaterresistantcooxidation
AT liqingbiao templatefreesynthesisofstablecobaltmanganesespinelhollownanostructuredcatalystsforhighlywaterresistantcooxidation
AT maobaohua templatefreesynthesisofstablecobaltmanganesespinelhollownanostructuredcatalystsforhighlywaterresistantcooxidation
AT liuzhi templatefreesynthesisofstablecobaltmanganesespinelhollownanostructuredcatalystsforhighlywaterresistantcooxidation