Computational Materials Science2022,Vol.21110.DOI:10.1016/j.commatsci.2022.111518

The role of carbon allotropes on the radiation resistance of Cu-based nanocomposites: An atomistic, energetic, and thermodynamic perspective

Amini, Maryam Azadegan, Behnam Akbarzadeh, Hamed Gharaei, Reza
Computational Materials Science2022,Vol.21110.DOI:10.1016/j.commatsci.2022.111518

The role of carbon allotropes on the radiation resistance of Cu-based nanocomposites: An atomistic, energetic, and thermodynamic perspective

Amini, Maryam 1Azadegan, Behnam 1Akbarzadeh, Hamed 1Gharaei, Reza1
扫码查看

作者信息

  • 1. Hakim Sabzevari Univ
  • 折叠

Abstract

Carbon allotropes can be considered as an excellent radiation resistance enhancer in metal-Graphene nano-composites (NCs). Many research groups studied the radiation resistance and interface stability of metal-Graphene NCs and revealed that Graphene can improve the radiation resistance of NCs under irradiation. Other allotropes of carbon have not been studied up to now. Therefore, in this work, four Cu-based NCs such as Cu-Graphene, Cu-Graphyne, Cu-Graphdiyne, and Cu-Graphane were studied by molecular dynamics (MD) to understand the role of carbon allotropes on the radiation resistance of Cu-based NCs. Compared with pure copper; four Cu-based NCs have fewer residual defects in the bulk region after irradiation. The results demon-strated that the interface of these NCs acts as a sink for radiation-induced defects, and preferentially traps in-terstitials over vacancies. The results of energetic calculations indicate the defect formation energy is reduced in the vicinity of interface regions. Compared with Cu-Graphyne and Cu-Graphdiyne, Cu-Graphene and Cu-Graphane have low segregation energy for interstitial emission mechanism to annihilate vacancies. Also, Cu/ Graphane/Cu interface has a higher strength of interaction and attraction with vacancies due to the low value of vacancy formation energy (E-vac). Thermodynamic and structural analyses reveal that Graphdiyne plane isn't a stable plane during collision cascades. The results of this study can provide a fundamental perspective on the radiation resistance of Cu-based NCs including different carbon allotropes to select the best allotrope to improve the radiation resistance of NC for using in extreme radiation environments.

Key words

Cu-carbon allotrope nanocomposite/Molecular dynamics/Molecular statics/Sink action/Interstitial emission/Thermodynamic properties/GRAPHENE NANOCOMPOSITE/MECHANICAL-PROPERTIES/COLLISION CASCADES/IRRADIATION/GRAPHYNE/DEFECTS/COPPER/DAMAGE/GRAPHDIYNE/STABILITY

引用本文复制引用

出版年

2022
Computational Materials Science

Computational Materials Science

EISCI
ISSN:0927-0256
被引量2
参考文献量78
段落导航相关论文