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Abnormal grain growth driven by high-temperature proton irradiation in nanocrystalline Ni

  • Kelvin Y. Xie
  • , Digvijay Yadav
  • , Kenneth Cooper
  • , Yu Lu
  • , Jana Howard
  • , Marcus Hansen
  • , Rijul R. Chauhan
  • , Jung Hun Park
  • , Sunkyung Lee
  • , Yuhyun Park
  • , Andrew Phong
  • , Gi Dong Sim
  • , Yaqiao Wu
  • , Lin Shao
  • , Michael J. Demkowicz
  • Texas A&M University
  • Boise State University
  • Center for Advanced Energy Studies
  • Korea Advanced Institute of Science and Technology

Research output: Contribution to journalArticlepeer-review

Abstract

In this study, we examine a nanocrystalline Ni thin film exposed to high-temperature proton irradiation and compare it with as-deposited and annealed-only counterparts. Despite lacking thermal spikes typical of heavy ions, 400 °C proton irradiation drives pronounced grain growth in select grains, whereas annealing alone yields only modest coarsening. Grain-boundary statistics show fewer low-angle boundaries (10–20°) and more high-angle boundaries (55–60°), consistent with irradiation-enhanced mobility of high-misorientation boundaries. The irradiated films retain a random texture, with no evidence of texture development or sharpening. Mechanisms, such as radiation-enhanced grain boundary diffusion, beam-induced heating, and ion channeling-mediated selective grain growth, are unlikely to be the predominant drivers to explain the resultant microstructure. Instead, we suggest irradiation-induced modifications of grain-boundary structure, including possible complexion transitions, as one plausible explanation for this selective grain growth and retention of random texture. However, additional temperature–dose studies are required to confirm the mechanism.

Original languageEnglish
Article number166009
JournalNuclear Instruments and Methods in Physics Research, Section B: Beam Interactions with Materials and Atoms
Volume572
DOIs
StatePublished - Mar 2026

Keywords

  • Grain growth
  • High-temperature irradiation
  • Nanocrystalline Ni
  • Proton irradiation
  • Texture

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