Ambient-pressure ozone treatment enables tuning of oxygen vacancy concentration in the LaSrFeO (0 ≤ ≤ 1) perovskite oxides

Oxygen vacancies in metal oxides can determine their properties. However, it is difficult to reduce the oxygen vacancy concentration in metal oxides without annealing them under high pressure. In this work, we develop a facile approach to control oxygen vacancy content via an ozone treatment under a...

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Bibliographic Details
Published in:Materials advances Vol. 3; no. 22; pp. 8229 - 824
Main Authors: Qing, Geletu, Thompson, David, Benamara, Mourad, Heske, Clemens, Greenlee, Lauren, Chen, Jingyi
Format: Journal Article
Published: 14-11-2022
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Summary:Oxygen vacancies in metal oxides can determine their properties. However, it is difficult to reduce the oxygen vacancy concentration in metal oxides without annealing them under high pressure. In this work, we develop a facile approach to control oxygen vacancy content via an ozone treatment under ambient pressure during cooling. This approach is demonstrated for the synthesis of La 1− x Sr x FeO 3− δ (0 ≤ x ≤ 1, 0 ≤ δ ≤ 0.5 x ) perovskite oxides - an important class of energy-related materials due to their wide range of non-stoichiometry, mixed ionic and electronic conductivity, and the presence of a rare Fe( iv ) oxidation state. A series of La 1− x Sr x FeO 3− δ compounds was initially synthesized using a polymerized complex method. The concentration of oxygen vacancies and Fe( iv ) were determined by redox titration, and the crystal structures were derived by analyzing X-ray diffraction patterns using Rietveld refinement. Significant amounts of oxygen vacancies were found in the as-synthesized compounds with x ≥ 0.8: La 0.2 Sr 0.8 FeO 3− δ ( δ = 0.066) and SrFeO 3− δ ( δ = 0.195). The ambient-pressure ozone treatment approach was able to substantially reduce the amount of oxygen vacancies in these compounds to achieve levels near the oxygen stoichiometry of 3 for La 0.2 Sr 0.8 FeO 3− δ ( δ = 0.006) and SrFeO 3− δ ( δ = 0.021). The oxygenation/deoxygenation kinetics can be tuned by the cooling rate after annealing. As the oxygen vacancy concentration decreases, the structure of SrFeO 3− δ evolves from orthorhombic to cubic, demonstrating that the crystal structures in metal oxides can be highly sensitive to the number of oxygen vacancies. The ozone treatment approach developed in this study may thus offer a robust means to tune the properties of a wide variety of metal oxides. Ambient-pressure ozone treatment can tune oxygenation/deoxygenation reaction kinetics enabling the accessibility of Fe( iv ) oxides with nearly zero oxygen vacancy.
Bibliography:https://doi.org/10.1039/d2ma00604a
Electronic supplementary information (ESI) available. See DOI
ISSN:2633-5409
DOI:10.1039/d2ma00604a