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Electron-induced evolution of dislocation density and morphology in Mg-Y-Nd-Gd-Zr alloy at ultra-low temperature

  • Chengqian Huang
  • , Zhen Lu*
  • , Chao Xu
  • , Xiaojun Wang
  • , Chengcai Zhang
  • , Dekai Liu
  • , Bugang Teng
  • , Lianmei Wu
  • , Fei Li
  • , Manman Yi
  • *Corresponding author for this work
  • Harbin Institute of Technology
  • Harbin Institute of Technology
  • China Aerospace Science and Industry Corporation

Research output: Contribution to journalLetterpeer-review

Abstract

This study elucidates the non-thermal mechanism of dislocation density reduction in a Mg-Y-Nd-Gd-Zr alloy under continuous electropulsing (6.67–15 A/mm²) at ultra-low temperatures (−150 °C to −196 °C) through tripartite characterization and first-principles analysis. Electron backscatter diffraction (EBSD) reveals a 15.2 % decrease in geometrically necessary dislocation (GND) density with increasing current, while X-ray line profile analysis (XLPA) confirms the inverse correlation between current intensity and overall defect density. Transmission electron microscopy (TEM) directly visualizes the dissolution of entangled dislocation clusters into isolated lines under high-current treatment (15 A/mm²), corroborating the statistical trends. First-principles calculations demonstrate that localized charge accumulation at defect sites reduces Mg vacancy formation energy by up to 2.8 %, lowering lattice resistance to dislocation glide. This charge-state-dependent vacancy proliferation provides a mechanistic link between electron flow and dislocation annihilation. The reduction of vacancy formation energy is a significant factor in the electron-induced dislocation evolution effect at ultra-low temperatures. These findings provide direct evidence for electron-induced dislocation annihilation mechanisms independent of Joule heating, advancing the understanding of electroplasticity in hexagonal close-packed alloys, and providing a novel approach for rapid, non-oxidative microstructural and property tuning of magnesium alloys.

Original languageEnglish
Article number101721
JournalJournal of Magnesium and Alloys
Volume17
DOIs
StatePublished - Apr 2026
Externally publishedYes

Keywords

  • Dislocation density and morphology
  • Isolated electric effect
  • Ultra-low temperature
  • Vacancy formation energy

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