The interplay of surface stability and oxygen vacancy dynamics in RE2Si2O7‐based environmental barrier coatings

Author:

Fan Yun12,Bai Yuelei1ORCID,Zhao Juanli2,Sha Simiao2,Li Yiran2ORCID,Li Qian3,Li Wenxian45,Liu Bin26ORCID

Affiliation:

1. National Key Laboratory of Science and Technology on Advanced Composites in Special Environments and Center for Composite Materials and Structure Harbin Institute of Technology Harbin China

2. School of Materials Science and Engineering Shanghai University Shanghai China

3. National Engineering Research Center for Magnesium Alloy Chongqing University Chongqing China

4. School of Materials Science and Engineering University of New South Wales Sydney New South Wales Australia

5. UNSW Materials & Manufacturing Futures Institute UNSW Sydney New South Wales Australia

6. Institute of Coating Technology for Hydrogen Gas Turbines Liaoning Academy of Materials Shenyang China

Abstract

AbstractSurface structure and relevant oxygen vacancy play an important role in the application of RE2Si2O7 for environmental barrier coatings, in which the oxygen vacancies in RE2Si2O7 may influence their thermal and optical properties. In this work, the structure and thermodynamics of (0 0 1) and (1 1 0) surfaces of RE2Si2O7 (RE = Yb, Lu) are studied via first‐principles calculations to reveal the underlying mechanism of the surface formation and the associated oxygen vacancy behavior. The (1 1 0) surface is preferred energetically, being in good agreement with the experiential results. It is uncovered that the weak chemical bond broken dominates the decrease of the surface energy, together with the contribution from the polyhedral distortion. Furthermore, the [O3Si–O–SiO3] site is found to be the preferred site for oxygen vacancies on (1 1 0) surface. The formation energies of oxygen vacancies on the (1 1 0) surfaces are lower than those in the bulk, suggesting their segregation on the surfaces. These findings provide essential insights into the surface excitation and oxygen vacancy behaviors of RE2Si2O7, which could shield light on the experimental improvement of the thermal, mechanical, and corrosion properties for RE2Si2O7‐based environmental barrier coating materials.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Materials Chemistry,Ceramics and Composites

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