Journal of Advanced Ceramics· 2026Q1
Machine learning empowered compositional design of multiple rare-earth principal component disilicates
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- 2026year
Short summary
A random forest model accurately predicts the phase composition of multi-rare-earth disilicates ((nRExi)2Si2O7) for environmental barrier coatings, identifying average RE3+ cationic radius and its deviation as key factors.
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Key points
- A random forest model accurately classifies four types of phase compositions in multi-rare-earth disilicates.
- Average RE3+ cationic radius and its deviation are identified as the most influential factors for phase prediction.
- Quantitative design criteria are established: < 0.885 Å for β-polymorphs and 0.885 Å < < 0.900 Å for γ-polymorphs, with specific bounds on radius deviation.
- High-throughput DFT calculations link phase formation to the energy cost of accommodating configurational randomness.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract The targeted design of multi-RE-principal-component RE2Si2O7 disilicates ((nRExi)2Si2O7) for environmental barrier coatings (EBCs) applications requires customizing the multi-RE compositions to achieve maximal optimization of the target properties. A critical prerequisite is the retention of a stable β- or γ-polymorphic phase under high-temperature service conditions. This, however, is challenged by their rich polymorphic phases, which varies with the elemental properties of the RE cationic sites. In this study, a random forest (RF) model with high accuracy is developed to classify the four types of phase composition − single-β, single-γ, single-δ/mixed δ+γ, and separate phase – identifying the average RE3+ cationic radius ( ) and the deviation of RE3+ cationic radius ( ) as the most influential factors. The well-trained model is validated by predicting the phase compositions of (Gdx1Hox2Ybx3Lux4)2Si2O7 and (Ndx1Hox2Ybx3Lux4)2Si2O7 systems, supported by experimental characterization of representative compositions. High-throughput DFT calculations reveal that the formation of their phases correlates with the low energy costs to accommodate configurational randomness into the multicomponent system, characterized by rapid convergence of the configurational entropy of mixing with increased excitation energy. The quantitative design criteria for single-phase β-(nRExi)2Si2O7 and γ-(nRExi)2Si2O7 disilicates are established: (i) < 0.885 Å for β-polymorphs and 0.885 Å < < 0.900 Å for the γ-polymorphs; and (ii) sufficiently small , whose upper bound increases monotonically with , reaching ~ 0.04 at the vicinity of ~ 0.885 and 0.900 Å. This work provides an investigation paradigm enabling the targeted design of (nRExi)2Si2O7 EBCs candidates.
The authors' abstract, as published at the source. Journal of Advanced Ceramics, 2026 · DOI ↗
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Field: Materials Chemistry
Materials ChemistryMaterials Science