Abstract
Poor fracture toughness and calcium–magnesium–aluminum–silicate (CMAS) corrosion resistance adversely affect environmental barrier coatings (EBCs) during prolonged service. Herein, an in-situ nanostructured Lu2O3/Lu2SiO5 composite EBC was successfully prepared using nanostructured Lu2SiO5 feedstocks. The morphologies and phase structures of the Lu2SiO5 feedstocks and the corresponding coating were thoroughly characterized. Additionally, the mechanism of the in suit reaction of the Lu2O3/Lu2SiO5 composite EBC was examined. The results indicate that the nanostructured as-deposited EBC exhibits a bimodal and dual-phase structure. The nanostructured Lu2SiO5 coating comprises melted lamellae and unmelted or partially melted particles. The phase structure of these unmelted or partially melted particles includes Lu2O3 and X2-Lu2SiO5. The Lu2O3 nanoparticles are formed by the decomposition of Lu2SiO5 during spraying, and their content can be controlled to <15 %, which can enhance the fracture toughness and CMAS corrosion resistance of the EBCs to some extent.
Original language | English |
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Pages (from-to) | 43345-43349 |
Number of pages | 5 |
Journal | Ceramics International |
Volume | 50 |
Issue number | 21 |
DOIs | |
Publication status | Published - 1 Nov 2024 |
Keywords
- Atmospheric plasma spraying
- Environmental barrier coating
- In situ reaction
- LuO
- LuSiO