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Formation and thermal stability of two-phase microstructures in Al-containing refractory compositionally complex
Stephan Laube1, Alexander Kauffmann1, Steven Schellert2
1Institute for Applied Materials (IAM), Karlsruhe Institute of Technology (KIT), Karlsruhe, Germany.
Phase separation in refractory compositionally complex alloys (RCCA) occurs via nucleation and growth, not spinodal decomposition. This study clarifies the mechanism in Ta-Mo-Ti-Cr-Al alloys, impacting material properties.
Area of Science:
- Materials Science
- Metallurgy
- Physical Chemistry
Background:
- Refractory Compositionally Complex Alloys (RCCA) exhibit complex microstructures.
- Phase separation mechanisms in RCCA, particularly spinodal decomposition versus nucleation and growth, are debated.
- Understanding these mechanisms is crucial for tailoring alloy properties.
Purpose of the Study:
- To definitively determine the phase separation mechanism in a specific Ta-Mo-Ti-Cr-Al alloy.
- To investigate the kinetics of phase separation under various annealing conditions.
- To correlate microstructure evolution with alloy hardness.
Main Methods:
- Utilized atom probe tomography and electron microscopy.
- Annealed samples over a wide range of times (orders of magnitude).
- Analyzed microstructural evolution and chemical composition at phase interfaces.
Main Results:
- Confirmed phase separation occurs through nucleation and growth, not spinodal decomposition.
- Observed initial formation of 2 nm ordered clusters upon quenching.
- Microstructure coarsened but precipitates remained <100 nm even after 1000 h annealing.
- Sharp interfaces with no significant chemical transition were observed.
Conclusions:
- The phase separation mechanism in this RCCA is unequivocally nucleation and growth.
- The findings contrast with spinodal decomposition hypotheses for other RCCA systems.
- The study provides insights into precipitation and coarsening effects on alloy hardness.
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