Development of interatomic potential and effect of ordering on defect properties in CrMnV
Abstract
Developing materials that can withstand extreme environments, such as high radiation doses and elevated temperatures, is crucial for next-generation particle accelerators, including the 2.4 MW Long-Baseline Neutrino Facility. High-Entropy Alloys have emerged as promising candidates for beam window materials due to their superior mechanical strength, corrosion resistance, and radiation tolerance. In this study, we focus on the Cr–Mn–V alloy system, developing and employing machine-learning interatomic potentials (MLIPs) to investigate the formation of an ordered phase and its influence on defect properties. Using hybrid Monte Carlo-Molecular Dynamics simulations, we observe the formation of a B2-ordered phase at lower temperatures, consistent with Density Functional Theory (DFT) predictions. Ordered structures display a bimodal distribution of migration energies and reduced mean square displacement values, indicating suppressed vacancy diffusion. Our results also show that the migration energy barrier varies based on the atomic species, with Mn and V exhibiting the highest and lowest average barriers, respectively. These findings suggest that atomic ordering inhibits defect mobility, potentially enhancing the radiation resistance of CrMnV alloys. The validated MLIP provides a reliable framework for simulations that are faster than traditional DFT while maintaining the accuracy required to study defect and ordering properties.
Article Details
Journal Info
Journal of Applied Physics
American Institute of Physics
Authors (7)
Gaurav Arora
UPMC Children's Hospital of Pittsburgh, Pittsburgh, Pennsylvania, United States
Muhammad Waqas Qureshi
Nicholas Crnkovich
Department of Nuclear Engineering and Engineering Physics, University of Wisconsin-Madison 3 , Madison, Wisconsin 53706,
Adrien Couet
Department of Nuclear Engineering and Engineering Physics
Kavin Ammigan
Fermi National Accelerator Laboratory 1 , Batavia, Illinois 60510,
Izabela Szlufarska
Frederique Pellemoine
Fermi National Accelerator Laboratory 1 , Batavia, Illinois 60510,