Energetics, structure, and composition of nanoclusters in Oxide Dispersion Strengthened Fe-Cr alloys
M. Posselt, D. Murali, and B. K. Panigrahi

TL;DR
This study uses advanced simulations to analyze the structure, energetics, and composition of nanoclusters in oxide dispersion strengthened Fe-Cr alloys, revealing insights into their stability, morphology, and radiation tolerance.
Contribution
It introduces a novel combined pair and triple parameter approach for modeling nanocluster interactions and provides detailed simulation data aligning with experimental observations.
Findings
Nanoclusters are stable and show negligible coarsening.
Ti reduces cluster size and enhances radiation tolerance.
Vacancies lead to three-dimensional cluster structures.
Abstract
Extensive first-principle calculations on embedded clusters containing few O, Y, Ti, and Cr atoms as well as vacancies are performed to obtain interaction parameters to be applied in Metropolis Monte Carlo simulations, within the framework of a rigid lattice model. A novel description using both pair and triple parameters is shown to be more precise than the commonly used pair parameterization. Simulated annealing provides comprehensive data on the energetics, structure and stoichiometry of nm-size clusters at T=0. The results are fully consistent with the experimental finding of negligible coarsening and a high dispersion of the clusters, with the observation that the presence of Ti reduces the cluster size, and with the reported radiation tolerance of the clusters. In alloys without vacancies clusters show a planar structure, whereas the presence of vacancies leads to…
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