Abstract
By applying the first-principles calculation, the electronic structure, mechanical and thermal properties of Sm3+-doped La2Zr2O7 were investigated, and experiments were carried out to verify the theoretical results. As the Sm3+ doping rate increases, the lattice parameters decrease while the theoretical density increases. The doping of Sm3+ promotes the transformation from pyrochlore structure to defective fluorite structure. The Young's modulus of pure La2Zr2O7 shows obvious anisotropy, while it tends to be isotropy with the doping of Sm3+. The calculated theoretical hardness is positively correlated with the doping rate, yet due to the solid solution strengthening effect, the materials with doping rate of 50% get the highest hardness. Based on the calculations and experiments, the optimal Sm3+ doping rate of La2Zr2O7 is 50%. LaSmZr2O7 has hardness of 11.35 GPa, the thermal conductivity of 1.35 W/(m·K) at 1173 K, and the thermal expansion coefficient of 10.12 × 10−6/K at 1173 K. The above results indicate that LaSmZr2O7 has good mechanical and thermal properties, which provides new ideas for the selection of thermal barrier coating materials.
| Original language | English |
|---|---|
| Pages (from-to) | 1475-1488 |
| Number of pages | 14 |
| Journal | Journal of the American Ceramic Society |
| Volume | 104 |
| Issue number | 3 |
| DOIs | |
| State | Published - Mar 2021 |
Keywords
- first principles
- mechanical properties
- thermal barrier coatings
- thermal conductivity
- thermal expansion
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