Atomic-scale view at the segregation of alkali metals toward the KTaO(001) perovskite surface

2024
journal article
article
3
dc.abstract.enPerovskites exhibit outstanding performance in applications such as photocatalysis, electrochemistry, or photovoltaics, yet their practical use is hindered by the instability of these materials under operating conditions, specifically caused by the segregation of alkali cations toward the surface. The problem arises from the bulk strain related to different cation sizes, as well as the inherent electrostatic instability of perovskite surfaces. Here, we focus on atomistic details of the surface-driven process of interlayer switching of alkali atoms at the inorganic perovskite surface. We show that the (001) surface of KTaO$_{3}$ cleaved at room temperature contains equally populated TaO$_{2}$ and KO terminations, while the uncompensated polarity of these terminations promotes diffusion of KO from the subsurface toward the topmost surface layer at temperatures as low as 200 °C. This effect is directly probed at the atomic scale by Atomic Force Microscopy and the chemical properties of the resulting surfaces are investigated by the adsorption of CO and H$_{2}$O. The experiments indicate that KO segregation is associated with the formation of K and O vacancies in the near-surface region, which is further supported by depth-dependent X-ray Photoelectron Spectroscopy measurements and Density Functional Theory calculations. Our study shows that the KO segregation influences the surface reactivity both toward CO and water, which was probed at the atomic scale.
dc.affiliationWydział Fizyki, Astronomii i Informatyki Stosowanej : Instytut Fizyki im. Mariana Smoluchowskiego
dc.contributor.authorAlexander, Aji
dc.contributor.authorReticcioli, Michele
dc.contributor.authorAlbons, Llorenç
dc.contributor.authorRedondo, Jesús
dc.contributor.authorCorrias, Marco
dc.contributor.authorPíš, Igor
dc.contributor.authorWang, Zhichang
dc.contributor.authorJohánek, Viktor
dc.contributor.authorMysliveček, Josef
dc.contributor.authorFranchini, Cesare
dc.contributor.authorWrana, Dominik - 166043
dc.contributor.authorSetvin, Martin
dc.date.accession2024-12-13
dc.date.accessioned2024-12-27T15:42:50Z
dc.date.available2024-12-27T15:42:50Z
dc.date.issued2024
dc.date.openaccess0
dc.description.accesstimew momencie opublikowania
dc.description.number50
dc.description.physical70010-70019
dc.description.versionostateczna wersja wydawcy
dc.description.volume16
dc.identifier.doi10.1021/acsami.4c13795
dc.identifier.doidataset10.57903/UJ/VC1I41
dc.identifier.eissn1944-8252
dc.identifier.issn1944-8244
dc.identifier.projectSONATA 2022/47/D/ST5/02439
dc.identifier.urihttps://ruj.uj.edu.pl/handle/item/520203
dc.identifier.weblinkhttps://pubs.acs.org/doi/10.1021/acsami.4c13795
dc.languageeng
dc.language.containereng
dc.rightsUdzielam licencji. Uznanie autorstwa 4.0 Międzynarodowa
dc.rights.licenceCC-BY
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/legalcode.pl
dc.share.typeinne
dc.subject.encation segregation
dc.subject.enKTaO$_{3}$
dc.subject.enscanning probe microscopy
dc.subject.enperovskites
dc.subject.ensolid oxide fuel cells
dc.subject.enORR
dc.subject.enphotoelectron spectroscopy
dc.subject.endensity functional theory
dc.subtypeArticle
dc.titleAtomic-scale view at the segregation of alkali metals toward the KTaO$_{3}$(001) perovskite surface
dc.title.journalACS Applied Materials & Interfaces
dc.typeJournalArticle
dspace.entity.typePublicationen
dc.abstract.en
Perovskites exhibit outstanding performance in applications such as photocatalysis, electrochemistry, or photovoltaics, yet their practical use is hindered by the instability of these materials under operating conditions, specifically caused by the segregation of alkali cations toward the surface. The problem arises from the bulk strain related to different cation sizes, as well as the inherent electrostatic instability of perovskite surfaces. Here, we focus on atomistic details of the surface-driven process of interlayer switching of alkali atoms at the inorganic perovskite surface. We show that the (001) surface of KTaO$_{3}$ cleaved at room temperature contains equally populated TaO$_{2}$ and KO terminations, while the uncompensated polarity of these terminations promotes diffusion of KO from the subsurface toward the topmost surface layer at temperatures as low as 200 °C. This effect is directly probed at the atomic scale by Atomic Force Microscopy and the chemical properties of the resulting surfaces are investigated by the adsorption of CO and H$_{2}$O. The experiments indicate that KO segregation is associated with the formation of K and O vacancies in the near-surface region, which is further supported by depth-dependent X-ray Photoelectron Spectroscopy measurements and Density Functional Theory calculations. Our study shows that the KO segregation influences the surface reactivity both toward CO and water, which was probed at the atomic scale.
dc.affiliation
Wydział Fizyki, Astronomii i Informatyki Stosowanej : Instytut Fizyki im. Mariana Smoluchowskiego
dc.contributor.author
Alexander, Aji
dc.contributor.author
Reticcioli, Michele
dc.contributor.author
Albons, Llorenç
dc.contributor.author
Redondo, Jesús
dc.contributor.author
Corrias, Marco
dc.contributor.author
Píš, Igor
dc.contributor.author
Wang, Zhichang
dc.contributor.author
Johánek, Viktor
dc.contributor.author
Mysliveček, Josef
dc.contributor.author
Franchini, Cesare
dc.contributor.author
Wrana, Dominik - 166043
dc.contributor.author
Setvin, Martin
dc.date.accession
2024-12-13
dc.date.accessioned
2024-12-27T15:42:50Z
dc.date.available
2024-12-27T15:42:50Z
dc.date.issued
2024
dc.date.openaccess
0
dc.description.accesstime
w momencie opublikowania
dc.description.number
50
dc.description.physical
70010-70019
dc.description.version
ostateczna wersja wydawcy
dc.description.volume
16
dc.identifier.doi
10.1021/acsami.4c13795
dc.identifier.doidataset
10.57903/UJ/VC1I41
dc.identifier.eissn
1944-8252
dc.identifier.issn
1944-8244
dc.identifier.project
SONATA 2022/47/D/ST5/02439
dc.identifier.uri
https://ruj.uj.edu.pl/handle/item/520203
dc.identifier.weblink
https://pubs.acs.org/doi/10.1021/acsami.4c13795
dc.language
eng
dc.language.container
eng
dc.rights
Udzielam licencji. Uznanie autorstwa 4.0 Międzynarodowa
dc.rights.licence
CC-BY
dc.rights.uri
http://creativecommons.org/licenses/by/4.0/legalcode.pl
dc.share.type
inne
dc.subject.en
cation segregation
dc.subject.en
KTaO$_{3}$
dc.subject.en
scanning probe microscopy
dc.subject.en
perovskites
dc.subject.en
solid oxide fuel cells
dc.subject.en
ORR
dc.subject.en
photoelectron spectroscopy
dc.subject.en
density functional theory
dc.subtype
Article
dc.title
Atomic-scale view at the segregation of alkali metals toward the KTaO$_{3}$(001) perovskite surface
dc.title.journal
ACS Applied Materials & Interfaces
dc.type
JournalArticle
dspace.entity.typeen
Publication
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