Molecular dynamics simulation of screw dislocation interaction with stacking fault tetrahedron in face-centered cubic Cu

Authors
Lee, Hyon-JeeShim, Jae-HyeokWirth, Brian D.
Issue Date
2007-10
Publisher
MATERIALS RESEARCH SOC
Citation
JOURNAL OF MATERIALS RESEARCH, v.22, no.10, pp.2758 - 2769
Abstract
The interaction of a gliding screw dislocation with stacking fault tetrahedron (SFT) in face-centered cubic (fee) copper (Cu) was studied using molecular dynamics simulations. Upon intersection, the screw dislocation spontaneously cross slips on the SFT face. One of the cross-slipped Shockley partials glides toward the SFT base, partially absorbing the SFT. At low applied stress, partial absorption produces a superjog, with detachment of the trailing Shockley partial via an Orowan process. This leaves a small perfect SFT and a truncated base behind, which subsequently form a sheared SFT with a pair of opposite sense ledges. At higher applied shear stress, the ledges can self-heal by gliding toward an SFT apex and transform the sheared SFT into a perfect SFT. However, complete absorption or collapse of an SFT (or sheared SFT) by a moving screw dislocation is not observed. These observations provide insights into defect-free channel formation in deformed irradiated Cu.
Keywords
TENSILE PROPERTIES; ATOMIC-SCALE; DEFECT INTERACTIONS; IRRADIATED COPPER; SINGLE-CRYSTALS; FCC METALS; MICROSTRUCTURE; TEMPERATURE; PROTONS; ALLOYS; TENSILE PROPERTIES; ATOMIC-SCALE; DEFECT INTERACTIONS; IRRADIATED COPPER; SINGLE-CRYSTALS; FCC METALS; MICROSTRUCTURE; TEMPERATURE; PROTONS; ALLOYS; Molecular dynamics; Dislocation; Stacking fault tetrahedron; Cu; Irradiation defect
ISSN
0884-2914
URI
https://pubs.kist.re.kr/handle/201004/134077
DOI
10.1557/JMR.2007.0345
Appears in Collections:
KIST Article > 2007
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