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Low-temperature growth of reactive pyrochlore nanostructures on Zirconia-supported ceria

  • The use of a catalyst support for the design of nanoscale heterogeneous catalysts based on cerium oxide offers vast possibilities for future catalyst development, particularly with regard to an increased focus on the use of renewable biogas and an emerging hydrogen economy. In this study, zirconia-supported ceria catalysts were synthesized, activated by using different thermochemical treatments, and characterized by way of temperature-programmed reduction (TPR), oxygen storage capacity, Xray diffraction, electron microscopy, and luminescence spectroscopy using Eu3+ as a spectroscopic probe. Through reduction-oxidation pretreatment routines, reactive pyrochlore structures were created at temperatures as low as 600 degrees C and identified through TPR and electron microscopy experiments. A structural relationship and alignment of the crystal planes is revealed in high-resolution scanning transmission electron microscopy experiments through the digital diffraction patterns. Low-temperature pretreatment induces the formation of reactiveThe use of a catalyst support for the design of nanoscale heterogeneous catalysts based on cerium oxide offers vast possibilities for future catalyst development, particularly with regard to an increased focus on the use of renewable biogas and an emerging hydrogen economy. In this study, zirconia-supported ceria catalysts were synthesized, activated by using different thermochemical treatments, and characterized by way of temperature-programmed reduction (TPR), oxygen storage capacity, Xray diffraction, electron microscopy, and luminescence spectroscopy using Eu3+ as a spectroscopic probe. Through reduction-oxidation pretreatment routines, reactive pyrochlore structures were created at temperatures as low as 600 degrees C and identified through TPR and electron microscopy experiments. A structural relationship and alignment of the crystal planes is revealed in high-resolution scanning transmission electron microscopy experiments through the digital diffraction patterns. Low-temperature pretreatment induces the formation of reactive pyrochlore domains under retention of the surface area of the catalyst system, and no further morphological changes are detected. Furthermore, the formation of pyrochlore domains achieved through severe reduction and mild reoxidation (SRMO) treatments is reversible. Over multiple alternating SRMO and severe reduction and severe reoxidation (SRSO) treatments, europium spectroscopy and TPR results indicate that pyrochlore structures are recreated over consecutive treatments, whenever the mild oxidation step at 500 degrees C is the last treatment (SRMO, SRMO-SRSO-SRMO, etc.).show moreshow less

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Author details:Maria Pilar YesteORCiD, Juan Carlos Hernandez-GarridoORCiD, Michael Uwe KumkeORCiDGND, Sarah Alvarado, Miguel Angel CauquiORCiD, Jose Juan CalvinoORCiD, Philipp-Alexander PrimusORCiDGND
DOI:https://doi.org/10.1021/acsanm.2c00416
ISSN:2574-0970
Title of parent work (English):ACS applied nano materials
Subtitle (English):implications for improved catalytic behavior
Publisher:American Chemical Society
Place of publishing:Washington
Publication type:Article
Language:English
Date of first publication:2022/05/05
Publication year:2022
Release date:2023/04/03
Tag:ceria; nanocomposite; oxygen; pyrochlore; storage capacity; supported catalyst; zirconia
Volume:5
Issue:5
Number of pages:11
First page:6316
Last Page:6326
Funding institution:FEDER/MINECO [MAT2017-87579-R]; MCIN/AEI [PID2020113006RB-I00]; Federal; Ministry for Economic Affairs and Energy through the AiF (German; Federation of Industrial Research Associations) [19976 BG]
Organizational units:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Chemie
DDC classification:5 Naturwissenschaften und Mathematik / 54 Chemie / 540 Chemie und zugeordnete Wissenschaften
Peer review:Referiert
Publishing method:DOAJ gelistet
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