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Thermochemical compatibility and microstructure evolution of (Yb0.7Gd0.3)4Hf3O12/Yb2SiO5/Si multilayers for T/EBCs

  • Beihang University

Research output: Contribution to journalArticlepeer-review

Abstract

In this study, the novel tri-layer (Yb0.7Gd0.3)4Hf3O12/Yb2SiO5/Si thermal/environmental barrier coatings (T/EBCs) were prepared by plasma spray-physical vapor deposition (PS-PVD) and atmospheric plasma spray. The thermochemical compatibility, microstructure evolution, phase compositions, and mechanical properties of the novel T/EBCs were systematically investigated. The (Yb0.7Gd0.3)4Hf3O12 coating deposited by PS-PVD exhibited a “quasi-columnar” structure with a “feather-like” microscopic morphology, with a nanohardness of ∼3.19 GPa and an elastic modulus of ∼43.98 GPa, while the Yb2SiO5 coating prepared by PS-PVD had a lamellar structure with high crystallinity and low porosity. The (Yb0.7Gd0.3)4Hf3O12 coating exhibited an adherent interface with the Yb2SiO5 coating after thermal aging at 1400°C for 100 h, with no interfacial pores or layer debonding, indicating superior thermochemical compatibility of the (Yb0.7Gd0.3)4Hf3O12/Yb2SiO5 interface. Moreover, the (Yb0.7Gd0.3)4Hf3O12 coating exhibited high resistance to sintering and great phase stability at high temperatures, making it a promising top coat material for T/EBCs.

Original languageEnglish
Article numbere20478
JournalJournal of the American Ceramic Society
Volume108
Issue number7
DOIs
StatePublished - Jul 2025

Keywords

  • coatings
  • environmental barrier coatings
  • interfaces
  • physical vapor deposition
  • rare earths

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