DOE OSTI · 2568547
Ab Initio Design of High-Entropy Thermal/ Environmental Barrier Coatings
Abstract
Next generation thermal/environmental barrier coatings (TEBC) require carefully balancing various properties including phase stability, thermal conductivity, coefficient of thermal expansion (CTE), mechanical properties, and resistance against hot corrosion and water vapor recession. This work mainly focuses on rapid design of cost-effective high entropy rare-earth disilicates and aluminum garnets to protect SiC-based ceramic matrix composites and nickel-based superalloys in the hot section of gas turbine engines using density functional theory methods. Our calculations identify several low-cost high entropy TEBC exhibiting ultralow thermal conductivity at 1500 K and desirable CTE while maintaining good mechanical properties, including Er1/2Y3/4Yb3/4Si2O7, Gd1/4Er1/4Y3/4Yb3/4Si2O7, Eu1/4Er1/4Y3/4Yb3/4Si2O7, and (Y1/4Gd1/4Er1/4Yb1/4)3Al5O12. This work also aims to gain fundamental understanding of oxygen diffusion in model disilicates. Minimizing oxidizer (such as water vapor and oxygen) permeability through the EBC layer can significantly decrease the growth rate of thermally grown oxide and extend the service life of the coating system. Oxygen diffusion mechanisms including formation energy of defects under varying oxygen conditions and defect migration energy barriers will be presented.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Hao, Shiqiang [NETL Site Support Contractor, National Energy Technology Laboratory], Oleksak, Richard [NETL] (ORCID:0000000346428152), Dogan, Omer [NETL] (ORCID:0000000231872026), Gao, Michael [NETL] (ORCID:000000020515846X). 2025-05-07. Ab Initio Design of High-Entropy Thermal/ Environmental Barrier Coatings. https://doi.org/10.2172/2568547
Cite the original work for its findings. Save a collection to share your selection of sources.