Computational Materials Science2022,Vol.2109.DOI:10.1016/j.commatsci.2022.111437

Conversion of stacking fault tetrahedra to bubbles in dual (Kr, He)-beam irradiated copper

Fan, Cuncai Niu, Tongjun Zhang, Xinghang El-Azab, Anter Annadanam, Rayaprolu Goutham Sreekar
Computational Materials Science2022,Vol.2109.DOI:10.1016/j.commatsci.2022.111437

Conversion of stacking fault tetrahedra to bubbles in dual (Kr, He)-beam irradiated copper

Fan, Cuncai 1Niu, Tongjun 1Zhang, Xinghang 1El-Azab, Anter 1Annadanam, Rayaprolu Goutham Sreekar1
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作者信息

  • 1. Purdue Univ
  • 折叠

Abstract

Stacking fault tetrahedrons (SFTs) are commonly observed in irradiated face-centered-cubic metals with low-tomedium stacking fault energies. Several mechanisms were previously proposed for the removal of SFTs in irradiated solids, including high temperature annealing, interactions with interstitial atoms, dislocations, and twin boundaries, and transformation to dislocation loop under compressive stress. We propose a previously unreported mechanism for the removal of SFT in irradiated copper, supported by experiments and atomistic simulations. In situ experiments showed that helium bubble density increased at the expense of SFT density following the initial phase of dual 1 MeV Kr/12 keV He ion irradiation, suggesting a possible conversion of SFTs to helium bubbles. Atomistic simulations of the interactions of helium atoms with SFTs confirmed this possibility and revealed the collective effects of helium-induced shear stress that deformed the atomic planes of Cu leading to the destruction of the SFT and leaving behind helium atoms in vacancy clusters (bubbles).

Key words

Molecular dynamics/Stacking fault tetrahedra/Helium bubbles/Ion irradiation/MOLECULAR-DYNAMICS/RADIATION-DAMAGE/HELIUM/CU/MICROSTRUCTURE/METALS/FCC/DISLOCATIONS/SIMULATIONS/DESTRUCTION

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出版年

2022
Computational Materials Science

Computational Materials Science

EISCI
ISSN:0927-0256
被引量1
参考文献量52
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