Oxygen partial pressure dependence of surface space charge formation in donor-doped SrTiO3
In this study, we investigated the electronic surface structure of donor-doped strontium titanate. Homoepitaxial 0.5 wt. % donor-doped SrTiO3 thin films were analyzed by in situ near ambient pressure X-ray photoelectron spectroscopy at a temperature of 770 K and oxygen pressures up to 5 mbar. Upon e...
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Veröffentlicht in: | APL materials 2017-05, Vol.5 (5), p.056106-056106-8 |
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Sprache: | eng |
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Zusammenfassung: | In this study, we investigated the electronic surface structure of donor-doped strontium titanate.
Homoepitaxial 0.5 wt. % donor-doped SrTiO3 thin films were analyzed by
in situ near ambient pressure X-ray photoelectron
spectroscopy at a temperature of 770 K and oxygen pressures up to 5
mbar. Upon exposure to an oxygen atmosphere at elevated temperatures, we observed a rigid
binding energy shift of up to 0.6 eV towards lower binding energies with respect to vacuum
conditions for all SrTiO3 core level peaks and the valence band maximum with
increasing oxygen pressure. The rigid shift is attributed to a relative shift of the Fermi
energy towards the valence
band concomitant with a negative charge accumulation at the
surface,
resulting in a compensating electron depletion layer in the near surface region. Charge
trapping effects solely based on carbon
contaminants are
unlikely due to their irreversible desorption under the given experimental conditions. In
addition, simple reoxygenation of oxygen vacancies can be ruled out as the high niobium
dopant
concentration dominates the electronic properties of the material. Instead, the negative
surface charge
may be provided by the formation of cation vacancies or the formation of charged oxygen adsorbates at the
surface.
Our results clearly indicate a pO2-dependent surface space charge
formation in donor-doped SrTiO3 in oxidizing conditions. |
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ISSN: | 2166-532X 2166-532X |
DOI: | 10.1063/1.4983618 |