Advanced thermal/environmental barrier coatings of high-entropy rare earth disilicates tuned by strong anharmonicity of EuSiO
Advancing thermal/environmental barrier coating (TEBC) materials with integrated thermal-mechanical functions is paramount for safeguarding SiC-based ceramic matrix composites (CMCs) in high-efficiency gas turbines. Herein, we employ a synergistic approach, combining density functional theory (DFT)...
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Veröffentlicht in: | Journal of materials chemistry. C, Materials for optical and electronic devices Materials for optical and electronic devices, 2024-11, Vol.12 (45), p.18526-18541 |
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Zusammenfassung: | Advancing thermal/environmental barrier coating (TEBC) materials with integrated thermal-mechanical functions is paramount for safeguarding SiC-based ceramic matrix composites (CMCs) in high-efficiency gas turbines. Herein, we employ a synergistic approach, combining density functional theory (DFT) methods and combinatorial chemistry techniques, to design high-performance and low-cost RE
2
Si
2
O
7
(RE = rare earth elements) TEBC materials tailored for enhanced compatibility with SiC-based CMCs. Expanding on phase stability of alloying pure RE
2
Si
2
O
7
, the investigation extends to the mechanical and thermal properties of solid solution systems, including Er
1/2
Y
3/4
Yb
3/4
Si
2
O
7
, Gd
1/4
Er
1/4
Y
3/4
Yb
3/4
Si
2
O
7
, and Eu
1/4
Er
1/4
Y
3/4
Yb
3/4
Si
2
O
7
. The solid solution systems exhibit a major reduction in lattice thermal conductivity relative to their pure counterparts, achieving ultralow values of 0.25 to 0.39 W m
−1
K
−1
at 1500 K. Furthermore, the coefficients of thermal expansion (CTE) of these solid solutions are precisely tuned within the desired range for SiC (4.4 to 5.5 × 10
−6
K
−1
), while maintaining good mechanical properties. In particular, the addition of Eu
2
Si
2
O
7
demonstrates to be an important variable to the tuning of CTE and lattice thermal conductivity by leveraging its strong anharmonicity, presenting a pioneering avenue for fine-tuning material properties. In summary, this research not only identifies promising TEBC materials with superior thermal properties, but also introduces a valuable computational material design methodology for the rapid discovery of complex materials for harsh environments.
Computational discovery and comprehensive property evaluation of advanced thermal/environmental barrier coatings of high-entropy rare earth disilicates alloys tuned by strong anharmonicity of Eu
2
Si
2
O
7
. |
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ISSN: | 2050-7526 2050-7534 |
DOI: | 10.1039/d4tc03522d |