Screw dislocation in zirconium: An ab initio study

Emmanuel Clouet
Phys. Rev. B 86, 144104 – Published 2 October 2012
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Abstract

Plasticity in zirconium is controlled by 1/312¯10 screw dislocations gliding in the prism planes of the hexagonal close-packed structure. This prismatic and not basal glide is observed for a given set of transition metals like zirconium and is known to be related to the number of valence electrons in the d band. We use ab initio calculations based on the density functional theory to study the core structure of screw dislocations in zirconium. Dislocations are found to dissociate in the prism plane in two partial dislocations, each with a pure screw character. Ab initio calculations also show that the dissociation in the basal plane is unstable. We calculate then the Peierls barrier for a screw dislocation gliding in the prism plane and obtain a small barrier. The Peierls stress deduced from this barrier is lower than 21 MPa, which is in agreement with experimental data. The ability of an empirical potential relying on the embedded atom method (EAM) to model dislocations in zirconium is also tested against these ab initio calculations.

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  • Received 7 July 2012

DOI:https://doi.org/10.1103/PhysRevB.86.144104

©2012 American Physical Society

Authors & Affiliations

Emmanuel Clouet*

  • CEA, DEN, Service de Recherches de Métallurgie Physique, 91191 Gif-sur-Yvette, France

  • *emmanuel.clouet@cea.fr

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Issue

Vol. 86, Iss. 14 — 1 October 2012

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