Evaluation of Mechanical Properties of Sigma 5(210)/001 Tilt Grain Boundary with Self-Interstitial Atoms by Molecular Dynamics Simulation
L Zhang and C Lu and LQ Pei and X Zhao and J Zhang and K Tieu, JOURNAL OF NANOMATERIALS, 2017, 8296458 (2017).
DOI: 10.1155/2017/8296458
Grain boundary (GB) can serve as an efficient sink for radiation-induced defects, and therefore nanocrystallinematerials containing a large fraction of grain boundaries have been shown to have improved radiation resistance compared with their polycrystalline counterparts. However, the mechanical properties of grain boundaries containing radiation- induced defects such as interstitials and vacancies are not well understood. In this study, we carried outmolecular dynamics simulations with embedded-atommethod (EAM) potential to investigate the interaction of Sigma 5(210)/001 symmetric tilt GB in Cu with various amounts of self-interstitial atoms. The mechanical properties of the grain boundary were evaluated using a bicrystal model by applying shear deformation and uniaxial tension. Simulation results showed that GB migration and GB sliding were observed under shear deformation depending on the number of interstitial atoms that segregated on the boundary plane. Under uniaxial tension, the grain boundary became a weak place after absorbing self- interstitial atoms where dislocations and cracks were prone to nucleate.
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