Please use this identifier to cite or link to this item: http://elar.urfu.ru/handle/10995/130359
Title: Comparative analysis of the electronic energy structure of nanocrystalline polymorphs of Y2O3 thin Layers: Theory and experiments
Authors: Boukhvalov, D. W.
Zatsepin, D. A.
Kuznetsova, Y. A.
Gavrilov, N. V.
Zatsepin, A. F.
Issue Date: 2023
Publisher: Elsevier B.V.
Citation: Boukhvalov, DW, Zatsepin, DA, Kuznetsova, YA, Gavrilov, NV & Zatsepin, AF 2023, 'Comparative analysis of the electronic energy structure of nanocrystalline polymorphs of Y2O3 thin Layers: Theory and experiments', Applied Surface Science, Том. 613, 155935. https://doi.org/10.1016/j.apsusc.2022.155935
Boukhvalov, D. W., Zatsepin, D. A., Kuznetsova, Y. A., Gavrilov, N. V., & Zatsepin, A. F. (2023). Comparative analysis of the electronic energy structure of nanocrystalline polymorphs of Y2O3 thin Layers: Theory and experiments. Applied Surface Science, 613, [155935]. https://doi.org/10.1016/j.apsusc.2022.155935
Abstract: The results of fabrication and characterization of atomic structure of nanocrystalline thin layers of Y2O3 in cubic and monoclinic phases is reported. Experimental data demonstrate crystalline ordering in nanocrystalline films with average grain size of ∼ 10–14 nm both for cubic and monoclinic studied structures. Density Functional Theory (DFT) based simulations demonstrate insignificant differences of electronic structure of these phases in the bulk and on the surfaces. Theoretical modeling also pointed out the significant broadening of valence and conductive bands caused by means of energy levels splitting in agreement with experimental data (X-ray photoelectron and photoluminescence spectra). The presence of various intrinsic and extrinsic defects (including surface adsorption of carbon mono- and dioxide) does not promote visible changes in electronic structure of Y2O3 surface for both studied phases. Optical absorption and luminescence measurements indicate insignificant bandgap reduction of Y2O3 nanocrystalline layers and the very little contribution from defect states. Simulation of extrinsic compression and expanding demonstrate stability of the electronic structure of nanocrystalline Y2O3 even under significant strain. Results of comprehensive studies demonstrate that yttrium oxide based nanocrystalline layers are prospective for various optical applications as a stable material. © 2022 Elsevier B.V.
Keywords: BANDS SPLITTING
CO ADSORPTION
DEFECTS
NANOCRYSTALLINE FILMS
SURFACE STABILITY
YTTRIUM OXIDE
DEFECT STATES
DENSITY FUNCTIONAL THEORY
LIGHT ABSORPTION
NANOCRYSTALS
OXIDE FILMS
PHOTOELECTRON SPECTROSCOPY
PHOTOLUMINESCENCE
YTTRIUM OXIDE
BAND SPLITTING
CO-ADSORPTION
COMPARATIVE ANALYZES
ELECTRONIC ENERGIES
ELECTRONIC.STRUCTURE
ENERGY STRUCTURES
NANO-CRYSTALLINE FILMS
NANO-CRYSTALLINE LAYERS
NANOCRYSTALLINES
SURFACE STABILITY
ELECTRONIC STRUCTURE
URI: http://elar.urfu.ru/handle/10995/130359
Access: info:eu-repo/semantics/openAccess
SCOPUS ID: 85143697236
WOS ID: 000901479100005
PURE ID: 32882827
ISSN: 0169-4332
DOI: 10.1016/j.apsusc.2022.155935
Sponsorship: Russian Science Foundation, RSF: 21-12-00392
The work has been supported by the Russian Science Foundation (project № 21-12-00392 ).
RSCF project card: 21-12-00392
Appears in Collections:Научные публикации ученых УрФУ, проиндексированные в SCOPUS и WoS CC

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