Abstract
The oxidation behavior of non-equimolar (HfZrTaCr)B2 high-entropy ceramics synergistically modified by SiC and Y2O3 was investigated using an orthogonal experimental design. Isothermal oxidation at 1500 °C in air followed parabolic kinetics for all compositions, consistent with diffusion-controlled oxidation. Statistical analysis indicates that SiC dominates the oxidation resistance (62.32%), followed by Y2O3 (28.26%), whereas the effect of CrB2 fraction is comparatively minor (9.42%). The optimized composition exhibits a markedly reduced parabolic rate constant (kp) of 7.32 mg2·cm−4·h−1. Microstructural characterization reveals the formation of a dense multilayer oxide scale, consisting of an outer SiO2-rich glassy layer and an inner Y-stabilized (Hf, Zr)O2 framework. The elimination of interconnected porosity suppresses short-circuit diffusion pathways, resulting in a transition of the rate-controlling step from defect-assisted transport toward predominantly lattice diffusion through the compact scale. The enhanced oxidation resistance is attributed to a glass–ceramic coupled barrier mechanism that effectively limits oxygen transport.
| Original language | English |
|---|---|
| Article number | 114016 |
| Journal | Corrosion Science |
| Volume | 270 |
| DOIs | |
| Publication status | Published - Sept 2026 |
Keywords
- Diffusion-controlled mechanism
- Glass–ceramic coupled barrier layer
- High-entropy diborides ceramics
- Oxidation kinetics
- Oxidation resistance
- SiC–YO synergistic effect
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