Ab initio molecular dynamics investigations of low-energy recoil events in Ni and NiCo

  • Bin Liu
  • , Fenglin Yuan
  • , Ke Jin
  • , Yanwen Zhang
  • , William J. Weber

Research output: Contribution to journalArticlepeer-review

22 Scopus citations

Abstract

Low-energy recoil events in pure Ni and the equiatomic NiCo alloy are studied using ab initio molecular dynamics simulations. We found that the threshold displacement energies are strongly dependent on orientation and weakly dependent on composition. The minimum threshold displacement energies are along the [1 1 0] direction in both pure Ni and the NiCo alloy. Compared to pure Ni, the threshold displacement energies increase slightly in the NiCo alloy due to the stronger bonds in the alloy, irrespective of the element type of the PKA. A single Ni interstitial occupying the center of a tetrahedron formed by four Ni atoms and a <1 0 0> split interstitial is produced in pure Ni by the recoils, while only the <1 0 0> split interstitial is formed in the NiCo alloy. Compared to the replacement sequences in pure Ni, anti-site defect sequences are observed in the alloy, which have high efficiency for both producing defects and transporting energy outside of the cascade core. These results provide insights into energy transfer processes occurring in equiatomic alloys under irradiation.

Original languageEnglish
Article number435006
JournalJournal of Physics Condensed Matter
Volume27
Issue number43
DOIs
StatePublished - Oct 6 2015
Externally publishedYes

Keywords

  • Ni
  • NiCo
  • ab initio molecular dynamics
  • alloying effect
  • low-energy recoil

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