Compact A15 Frank-Kasper nano-phases at the origin of dislocation loops in face-centred cubic metals

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Alexandra M. Goryaeva
Christophe Domain
Alain Chartier
Alexandre Dézaphie
Thomas D. Swinburne
Kan Ma
Marie Loyer-Prost
Jérôme Creuze
Mihai-Cosmin Marinica
机构
[1] Université Paris-Saclay,Université Paris
[2] CEA,Saclay, CEA
[3] Service de recherche en Corrosion et Comportement des Matériaux,School of Metallurgy and Materials
[4] SRMP,undefined
[5] EDF-R&D,undefined
[6] Département Matériaux et Mécanique des Composants (MMC),undefined
[7] Les Renardieres,undefined
[8] Service de recherche en Corrosion et Comportement des Matériaux,undefined
[9] Université Paris-Saclay,undefined
[10] Aix-Marseille Université,undefined
[11] CNRS,undefined
[12] University of Birmingham,undefined
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It is generally considered that the elementary building blocks of defects in face-centred cubic (fcc) metals, e.g., interstitial dumbbells, coalesce directly into ever larger 2D dislocation loops, implying a continuous coarsening process. Here, we reveal that, prior to the formation of dislocation loops, interstitial atoms in fcc metals cluster into compact 3D inclusions of A15 Frank-Kasper phase. After reaching the critical size, A15 nano-phase inclusions act as a source of prismatic or faulted dislocation loops, dependent on the energy landscape of the host material. Using cutting-edge atomistic simulations we demonstrate this scenario in Al, Cu, and Ni. Our results explain the enigmatic 3D cluster structures observed in experiments combining diffuse X-ray scattering and resistivity recovery. Formation of compact nano-phase inclusions in fcc structure, along with previous observations in bcc structure, suggests that the fundamental mechanisms of interstitial defect formation are more complex than historically assumed and require a general revision. Interstitial-mediated formation of compact 3D precipitates can be a generic phenomenon, which should be further explored in systems with different crystallographic lattices.
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