Investigation of atomic diffusion at Ni/Zr48Cu36Ag8Al8 interfaces in the glass transition temperature

Linlin Sun, Jun Wang, Gengsheng Jiao, Ling Huang

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

Poor plasticity and small dimension are the main disadvantages of metallic glass. Diffusion bonding and composite fabrication between bulk metallic glasses (BMGs) and crystal metal are promising methods of addressing these disadvantages. In this study, the long-term atomic diffusion behavior in the glass transition temperature (Tg) is investigated to avoid the formation of the crystalline phase at the interface. Diffusion-coupled Ni/Zr48Cu36Ag8Al8 BMG is successfully fabricated by sputtering deposition. The diffusivities of Ni in Zr48Cu36Ag8Al8 metallic glass are calculated by using the thin-film solution of Fick's second law. The diffusivities of Ni in Zr48Cu36Ag8Al8 alloy are functions of annealing temperature and time because of the dominant effect of the free volume. High-resolution transmission electron microscopy results show that there are no crystals formed at the interface of diffusion-coupled Ni/Zr48Cu36Ag8Al8 BMG below Tg, and mutual element diffusion occurs near the interface. Analysis of the diffusion behavior and microstructure indicates that the long-term annealing below Tg can be applied to the diffusion bonding of BMG and crystal metal.

Original languageEnglish
Pages (from-to)135-139
Number of pages5
JournalSurface and Interface Analysis
Volume53
Issue number2
DOIs
StatePublished - Feb 2021

Keywords

  • diffusion
  • interface
  • metallic glass
  • sputtering deposition

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