Large-scale first-principles calculations of high entropy alloys
ORAL
Abstract
High entropy alloys show a variety of fascinating properties like high hardness, wear resistance, corrosion resistance, etc. They are random solid solutions of many components with rather high concentrations. We perform ab-initio calculations for the high entropy alloy CrFeCoNi, which equal concentration of 25% for each element. By the KKRnano program package, which is based on an order-N screened Korringa-Kohn-Rostoker Green's function method, we consider a face-centered cubic (FCC) supercell with 1372 randomly distributed elements. It is found from our calculations that the local moments of the Cr atoms show a large environmental variation. We present a new method to calculate "local energies" of all atoms. This is based on the partitioning of the whole space into Voronoi cells and allows to calculate the energetic contribution of each atomic cell to the total energy of the supercell. The supercell calculations show very large variations of the local energies, analogous to the variations of the local moments. This shows that the random solid solution is not stable and has a tendency to form an L12-structure with the Cr-atoms ordered at the corner of the cube and the elements Fe, Co and Ni randomly distributed on the three other FCC sublattices.
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Presenters
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Tetsuya Fukushima
Institute for NanoScience Design, Osaka University
Authors
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Tetsuya Fukushima
Institute for NanoScience Design, Osaka University
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Hiroshi Katayama-Yoshida
CSRN, The University of Tokyo, CSRN, The university of Tokyo
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Kazunori Sato
Graduate School of Engineering, Osaka University
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Masako Ogura
Peter Gruenberg Institut and Institute for Advanced Simulation, Forschungszentrum Juelich GmbH and JARA
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Rudolf Zeller
Peter Gruenberg Institut and Institute for Advanced Simulation, Forschungszentrum Juelich GmbH and JARA
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Peter Dederichs
Peter Gruenberg Institut and Institute for Advanced Simulation, Forschungszentrum Juelich GmbH and JARA