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9R phase enabled superior radiation stability of nanotwinned Cu alloys via in situ radiation at elevated temperature

  • Cuncai Fan
  • , Dongyue Xie
  • , Jin Li
  • , Zhongxia Shang
  • , Youxing Chen
  • , Sichuang Xue
  • , Jian Wang
  • , Meimei Li
  • , Anter El-Azab
  • , Haiyan Wang
  • , Xinghang Zhang*
  • *Corresponding author for this work
  • Purdue University
  • University of Nebraska-Lincoln
  • University of North Carolina at Charlotte
  • Argonne National Laboratory

Research output: Contribution to journalArticlepeer-review

Abstract

Nanotwinned metals exhibit outstanding radiation tolerance as twin boundaries effectively engage, transport and eliminate radiation-induced defects. However, radiation-induced detwinning may reduce the radiation tolerance associated with twin boundaries, especially at elevated temperatures. Here we show, via in-situ Kr ion irradiation inside a transmission electron microscope, that 3 at. % Fe in epitaxial nanotwinned Cu (Cu 97 Fe 3 ) significantly improves the thermal and radiation stability of nanotwins during radiation up to 5 displacements-per-atom at 200 °C. Such enhanced stability of nanotwins is attributed to a diffuse 9R phase resulted from the dissociation of incoherent twin boundaries in nanotwinned Cu 97 Fe 3 . The mechanisms for the enhanced stability of twin boundaries in irradiated nanotwinned alloys are discussed. The stabilization of nano-twins opens up opportunity for the application of nanotwinned alloys for aggressive radiation environments.

Original languageEnglish
Pages (from-to)248-256
Number of pages9
JournalActa Materialia
Volume167
DOIs
StatePublished - 1 Apr 2019
Externally publishedYes

Keywords

  • 9R phase
  • Detwinning
  • Nanotwins
  • Radiation
  • Solute drag

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