Swarnakar, Palash and Ghosh, M and Mahato, B and De, P S and Roy, Amritendu (2024) Understanding the phase stability in a multi-principal-component AlCuFeMn alloy. Journal of Physics D-Applied Physics, 57(36) .
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Abstract
Method(s) that can reliably predict phase evolution across thermodynamic parameter space, especially in complex systems, are of critical significance in academia as well as in the manufacturing industry. In the present work, the phase stability in an equimolar AlCuFeMn multi-principal-component alloy (MPCA) was predicted using complementary first-principles density functional theory calculations and ab initio molecular dynamics (AIMD) simulations. The temperature evolution of completely disordered, partially ordered, and completely ordered phases was examined based on the Gibbs free energy. Configurational, electronic, vibrational, and lattice mismatch entropies were considered to compute the Gibbs free energy of the competing phases. Additionally, elemental segregation was studied using AIMD. The predicted results at 300 K align well with room-temperature experimental observations using x-ray diffraction and scanning and transmission electron microscopy on a sample prepared using commercially available pure elements. The adopted method could help in predicting plausible phases in other MPCA systems with complex phase stability.
Item Type: | Article |
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Official URL/DOI: | https://10.1088/1361-6463/ad4db0 |
Uncontrolled Keywords: | phase stability, ab initio calculations, multi-principal-component alloy, powder x-ray diffraction, electron microscopy, high entropy alloys, initio molecular-dynamics, single-phase evolution, Ni |
Divisions: | Material Science and Technology |
ID Code: | 9591 |
Deposited By: | HOD KRIT |
Deposited On: | 03 Jul 2024 11:11 |
Last Modified: | 03 Jul 2024 11:11 |
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