In this study, we propose a full atomistic study of [100] dislocations in MgSiO(3) post-perovskite based on the pairwise potential parameterized by Oganov et al. (Phys Earth Planet Inter 122:277-288, 2000) for MgSiO(3) perovskite. We model screw dislocations to identify planes where they glide easier. We show that despite a small tendency to core spreading in {011}, [100] screw dislocations glide very easily (Peierls stress of 1Â GPa) in (010) where only Mg-O bonds are to be sheared. Crossing the Si-layers results in a higher lattice friction as shown by the Peierls stress of [100](001): 17.5Â GPa. Glide of [100] screw dislocations in {011} appears also to be highly unfavorable. Whatever the planes, (010), (001) or {011}, edge dislocations are characterized by a wider core (of the order of 2b). Contrary to screw character, they bear negligible lattice friction (0.1Â GPa) for each slip system. The layered structure of post-perovskite results in a drastic reduction in lattice friction opposed to the easiest slip systems compared to perovskite.
Modeling defects and plasticity in MgSiO(3) post-perovskite: Part 2-screw and edge [100] dislocations.
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作者:Goryaeva Alexandra M, Carrez Philippe, Cordier Patrick
| 期刊: | Physics and Chemistry of Minerals | 影响因子: | 1.600 |
| 时间: | 2015 | 起止号: | 2015;42(10):793-803 |
| doi: | 10.1007/s00269-015-0763-8 | ||
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