Materials Map

Discover the materials research landscape. Find experts, partners, networks.

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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National Centre for Nuclear Research

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (7/7 displayed)

  • 2024Atomistic-level analysis of nanoindentation-induced plasticity in arc-melted NiFeCrCo alloys: The role of stacking faults9citations
  • 2023Substitutional Alloying Using Crystal Graph Neural Networkscitations
  • 2023Dislocation plasticity in equiatomic NiCoCr alloys : Effect of short-range order12citations
  • 2023Atomistic insights into nanoindentation-induced deformation of α-Al2O3 single crystals10citations
  • 2023Alloy Informatics through Ab Initio Charge Density Profiles: Case Study of Hydrogen Effects in Face-Centered Cubic Crystalscitations
  • 2022Atomistic simulations of dislocation plasticity in concentrated VCoNi medium entropy alloys: Effects of lattice distortion and short range order7citations
  • 2022Shear banding instability in multicomponent metallic glasses: Interplay of composition and short-range order10citations

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Olejarz, Artur
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Jozwik, Iwona
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Kurpaska, Łukasz
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Reis, Marie Landeiro Dos
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Kalita, Damian
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Dominguez-Gutierrez, F. J.
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Muszka, Krzysztof
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Alava, Mikko
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Xu, Qinqin
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Kaxiras, Efthimios
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Alvarez-Donado, Rene
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Alvarez-Donado, René
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Co-Authors (by relevance)

  • Olejarz, Artur
  • Jozwik, Iwona
  • Kurpaska, Łukasz
  • Reis, Marie Landeiro Dos
  • Kalita, Damian
  • Dominguez-Gutierrez, F. J.
  • Muszka, Krzysztof
  • Wyszkowska, Edyta
  • Huo, Wenyi
  • Alava, Mikko J.
  • Massa, Dario
  • Cieśliński, Daniel
  • Naghdi, Amirhossein
  • Poisvert, Axel E.
  • Alava, Mikko
  • Esfandiarpour, Amin
  • Alvarez, Rene
  • Karimi, Kamran
  • Naghdi, Amir H.
  • Sobkowicz, Pawel
  • Domínguez-Gutiérrez, F. Javier
  • Mulewska, Katarzyna
  • Zaborowska, Agata
  • Xu, Qinqin
  • Kaxiras, Efthimios
  • Alvarez-Donado, Rene
  • Alvarez-Donado, René
OrganizationsLocationPeople

article

Atomistic simulations of dislocation plasticity in concentrated VCoNi medium entropy alloys: Effects of lattice distortion and short range order

  • Alava, Mikko
  • Alvarez-Donado, Rene
  • Esfandiarpour, Amin
  • Papanikolaou, Stefanos
Abstract

<jats:p>Face-centered cubic (fcc) high and medium entropy alloys (H/MEAs) have been shown to display superior mechanical properties at low temperatures, but significant improvement of their strength at high temperatures is required for industrial applications at extreme conditions. Recently, it has been shown that the breakthrough of the MEAs from equiatomic/near-equiatomic to non-equiatomic ratios leads to strong MEAs with good ductility. To design new H/MEAs, we consider two important factors that may influence strength: the chemical composition and chemical short range order (CSRO). In this study, we investigate the depinning stress (<jats:italic>σ</jats:italic><jats:sub><jats:italic>c</jats:italic></jats:sub>) as a criterion of strength of several compositions of VCoNi concentrated solid solution alloys (CSSAs) including V<jats:sub>0.33</jats:sub>Co<jats:sub>0.33</jats:sub>Ni<jats:sub>0.33</jats:sub>, V<jats:sub>0.35</jats:sub>Co<jats:sub>0.2</jats:sub>Ni<jats:sub>0.45</jats:sub>, V<jats:sub>0.33</jats:sub>Co<jats:sub>0.17</jats:sub>Ni<jats:sub>0.5</jats:sub>, and V<jats:sub>0.17</jats:sub>Co<jats:sub>0.33</jats:sub>Ni<jats:sub>0.5</jats:sub> at 5 K and 300 K, using atomistic simulations. The chosen interatomic potential is shown to be reliable by comparing experimental/<jats:italic>ab initio</jats:italic> values and calculated parameters such as lattice constant, shear modulus, depinning stress, and temperature variation of stacking fault width for equimolar VCoNi. We find a good agreement between experimental friction stress and the depinning stress extracted from our results for equimolar VCoNi. Also, we find that Vclusters are the main pinning points of dislocations, and With a random distribution of atoms, we find that the alloy composition V<jats:sub>0.33</jats:sub>Co<jats:sub>0.17</jats:sub>Ni<jats:sub>0.5</jats:sub> displays the largest depinning stress at both 5 and 300 K. Furthermore, to investigate how CSRO affects the strength of these alloys, we design CSRO into the microstructure using two different methods: In the first method, hybrid Molecular-dynamics/Monte-Carlo simulations were employed to simulate annealing at various temperatures. We observe that such simulations create CSRO so that it increases with decreasing annealing temperature. Recently, the CSRO motif and its concentration in an equimolar VCoNi have been determined by experiment. By modeling this experiment, we also implemented the CSRO into microstructure as the second method. By using both methods, the effect of CSRO on the magnitude of the depinning stress is discussed. It was shown that in both methods, CSRO significantly influences the strength of non-equimolar VCoNi alloys.</jats:p>

Topics
  • impedance spectroscopy
  • microstructure
  • experiment
  • simulation
  • strength
  • dislocation
  • annealing
  • plasticity
  • random
  • ductility
  • alloy composition
  • stacking fault