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Autor
Alexander, Aji 1 Belas, Eduard 1 Diebold, Ulrike 1 Ellinger, Florian 1 Franceschi, Giada 1 Franchini, Cesare 1 Gabriel, Vit 1 Jakub, Zdenek 1 Kocan, Pavel 1 Kraushofer, Florian 1 Parkinson, Gareth S 1 Patera, Laerte L 1 Redondo, Jesus 1 Repp, Jascha 1 Reticcioli, Michele 1 Rheinfrank, Erik 1 Riva, Michele 1 Schmid, Michael 1 Setvin, Martin 1 Sokolović, Igor 1
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Pracoviště
Department of Surface and Plasma Science Fac... 1 Dipartimento di Fisica e Astronomia Universi... 1 Institute of Applied Physics TU Wien 1040 Vi... 1 Institute of Experimental and Applied Physic... 1 Institute of Physical Chemistry University o... 1 Institute of Physics Czech Academy of Scienc... 1 Marian Smoluchowski Institute of Physics Jag... 1 University of Vienna Faculty of Physics Cent... 1
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Redondo, Jesus
Autor Redondo, Jesus ORCID Department of Surface and Plasma Science, Faculty of Mathematics and Physics, Charles University, 180 00 Prague, Czech Republic Institute of Applied Physics, TU Wien, 1040 Vienna, Austria Institute of Physics, Czech Academy of Sciences, Cukrovarnická 10, 162 00 Prague 6, Czech Republic
- Reticcioli, Michele
- Gabriel, Vit
- Wrana, Dominik
- Ellinger, Florian
- Riva, Michele
- Franceschi, Giada
- Rheinfrank, Erik
- Sokolović, Igor
- Jakub, Zdenek
NLK
Directory of Open Access Journals
od 2015
Freely Accessible Science Journals
od 2015
PubMed Central
od 2015
Europe PubMed Central
od 2015
Open Access Digital Library
od 2015-01-01
Open Access Digital Library
od 2015-01-01
PubMed
39485848
DOI
10.1126/sciadv.adp7833
Knihovny.cz E-zdroje
In polarizable materials, electronic charge carriers interact with the surrounding ions, leading to quasiparticle behavior. The resulting polarons play a central role in many materials properties including electrical transport, interaction with light, surface reactivity, and magnetoresistance, and polarons are typically investigated indirectly through these macroscopic characteristics. Here, noncontact atomic force microscopy (nc-AFM) is used to directly image polarons in Fe2O3 at the single quasiparticle limit. A combination of Kelvin probe force microscopy (KPFM) and kinetic Monte Carlo (KMC) simulations shows that the mobility of electron polarons can be markedly increased by Ti doping. Density functional theory (DFT) calculations indicate that a transition from polaronic to metastable free-carrier states can play a key role in migration of electron polarons. In contrast, hole polarons are significantly less mobile, and their hopping is hampered further by trapping centers.
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Po ukončení testovacího provozu bude odkaz přesměrován adresu produkční verze portálu Medvik.