36
IRUS Total
Downloads
  Altmetric

Electronic properties and surface reactivity of SrO-terminated SrTiO3 and SrO-terminated iron-doped SrTiO3

Title: Electronic properties and surface reactivity of SrO-terminated SrTiO3 and SrO-terminated iron-doped SrTiO3
Authors: Staykov, A
Tellez, H
Druce, J
Wu, J
Ishihara, T
Kilner, J
Item Type: Journal Article
Abstract: Surface reactivity and near-surface electronic properties of SrO-terminated SrTiO3 and iron doped SrTiO3 were studied with first principle methods. We have investigated the density of states (DOS) of bulk SrTiO3 and compared it to DOS of iron-doped SrTiO3 with different oxidation states of iron corresponding to varying oxygen vacancy content within the bulk material. The obtained bulk DOS was compared to near-surface DOS, i.e. surface states, for both SrO-terminated surface of SrTiO3 and iron-doped SrTiO3. Electron density plots and electron density distribution through the entire slab models were investigated in order to understand the origin of surface electrons that can participate in oxygen reduction reaction. Furthermore, we have compared oxygen reduction reactions at elevated temperatures for SrO surfaces with and without oxygen vacancies. Our calculations demonstrate that the conduction band, which is formed mainly by the d-states of Ti, and Fe-induced states within the band gap of SrTiO3, are accessible only on TiO2 terminated SrTiO3 surface while the SrO-terminated surface introduces a tunneling barrier for the electrons populating the conductance band. First principle molecular dynamics demonstrated that at elevated temperatures the surface oxygen vacancies are essential for the oxygen reduction reaction.
Issue Date: 2-Mar-2018
Date of Acceptance: 9-Feb-2018
URI: http://hdl.handle.net/10044/1/60034
DOI: https://dx.doi.org/10.1080/14686996.2018.1440136
ISSN: 1468-6996
Publisher: Institute of Physics, National Institute for Materials Science
Start Page: 221
End Page: 230
Journal / Book Title: Science and Technology of Advanced Materials
Volume: 19
Issue: 1
Copyright Statement: © 2018 The author(s). Published by national i nstitute for Materials Science in partnership with Taylor & Francis. This is an open access article distributed under the terms of the creative commons a ttribution license (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
Keywords: 401 1st principle calculations
50 Energy Materials; 207 Fuel cells / Batteries / Super capacitors
DFT
oxygen reduction
perovskites
surface chemistry
0912 Materials Engineering
Materials
Publication Status: Published
Conference Place: United States
Open Access location: https://www.tandfonline.com/doi/full/10.1080/14686996.2018.1440136
Online Publication Date: 2018-02-13
Appears in Collections:Materials