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dc.contributor.author
Shi, Quanquan
dc.contributor.author
Wang, Yuhang
dc.contributor.author
Guo, Song
dc.contributor.author
Han, Zhong-Kang
dc.contributor.author
Ta, Na
dc.contributor.author
Li, Gao
dc.contributor.author
Baiker, Alfons
dc.date.accessioned
2021-10-22T17:10:16Z
dc.date.available
2021-09-10T03:17:54Z
dc.date.available
2021-10-22T17:10:16Z
dc.date.issued
2021-10-07
dc.identifier.issn
2044-4753
dc.identifier.issn
2044-4761
dc.identifier.other
10.1039/d1cy01161h
en_US
dc.identifier.uri
http://hdl.handle.net/20.500.11850/505022
dc.description.abstract
CuOx/CeO2 catalysts were prepared by depositing CuOx clusters onto ceria nanoparticles with different morphologies, including rods, polyhedra, and cubes. These catalysts were evaluated for the reduction of NO with CO. Depending on their morphology these nanoparticles exposed different ceria faces on the surface. Nanorods and nanopolyhedra exposed primarily the (111) faces, while nanocubes showed the (100) faces. The catalytic performance of these catalysts depended strongly on the morphology of the support, that is on the exposed ceria faces and was highest for CuOx supported on nanorods and nanopolyhedra, while on the nanocubes it was lowest. The focus of our study was the influence of oxygen vacancy defects and their role in the reaction mechanism. The morphology-dependent concentration of oxygen vacancy defects on these catalysts was examined using electron paramagnetic resonance, X-ray photoelectron spectroscopy, and Raman spectroscopy. Among the evaluated CuOx/CeO2 catalysts the one based on ceria polyhedra exhibited the best performance, affording full conversion of NO and CO with nearly 100% selectivity to N-2 over 150 h on-stream at 250 degrees C and a gas hourly space velocity of 36 000 mL g(-1) h(-1). First-principles calculations indicate that with increasing lattice strain the formation of oxygen vacancies is favored on ceria(111) compared to ceria(100) and shed some light on the crucial role of oxygen vacancy defects in the reaction mechanism.
en_US
dc.language.iso
en
en_US
dc.publisher
Royal Society of Chemistry
en_US
dc.title
NO reduction with CO over CuOx/CeO2 nanocomposites: influence of oxygen vacancies and lattice strain
en_US
dc.type
Journal Article
dc.date.published
2021-08-19
ethz.journal.title
Catalysis Science & Technology
ethz.journal.volume
11
en_US
ethz.journal.issue
19
en_US
ethz.journal.abbreviated
Catal. Sci. Technol.
ethz.pages.start
6543
en_US
ethz.pages.end
6552
en_US
ethz.identifier.wos
ethz.identifier.scopus
ethz.publication.place
Cambridge
ethz.publication.status
published
en_US
ethz.date.deposited
2021-09-10T03:18:41Z
ethz.source
WOS
ethz.eth
yes
en_US
ethz.availability
Metadata only
en_US
ethz.rosetta.installDate
2021-10-22T17:10:22Z
ethz.rosetta.lastUpdated
2024-02-02T15:10:42Z
ethz.rosetta.versionExported
true
ethz.COinS
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