Abstract
To address the demand for high-temperature infrared stealth, a novel high-entropy rare-earth disilicate (Lu1/6Yb1/6Sc1/6Er1/6Y1/6Ho1/6)2Si2O7 ((6RE1/6)2Si2O7) coating was fabricated via atmospheric plasma spraying. The coating exhibited a single-phase monoclinic structure with uniform element distribution. It demonstrated low infrared emissivity in the 3−5 μm band, with values of 0.497 at room temperature and 0.479 at 400 °C. This low emissivity is attributed to the increased charge carrier concentration resulting from oxygen vacancies, as confirmed by X ray photoelectron spectroscopy (XPS) analysis. Furthermore, the coating achieved a low thermal conductivity of 0.51 W m−1 K−1 at 1173 K, benefiting from severe phonon scattering caused by the high-entropy composition. The coating also possessed a good bonding strength of 31.98 MPa. This work demonstrates that the high-entropy strategy is effective in developing silicate coatings with synergistic low emissivity and low thermal conductivity for advanced infrared stealth applications.
| Original language | English |
|---|---|
| Article number | 115519 |
| Journal | Vacuum |
| Volume | 252 |
| DOIs | |
| Publication status | Published - Sept 2026 |
Keywords
- Atmospheric plasma spraying
- High-entropy ceramic coating
- Infrared emissivity
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