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Self-adaptive dislocation morphing ductilizes a refractory high-entropy alloy across an ultrawide temperature spectrum

  • Xichen Zhou
  • , Qianyong Zhu
  • , Hongliang Dong
  • , Xiao Liang
  • , Qihan Jia
  • , Cheng Zhang*
  • , Jian He
  • , Wenting He
  • , Yuye Wu
  • , Yi Ru
  • , Bin Chen
  • , Robert O. Ritchie*
  • , Hongbo Guo*
  • , Shiteng Zhao*
  • *Corresponding author for this work
  • Beihang University
  • Center for High Pressure Science & Technology Advanced Research
  • Shanghai Advanced Research in Physical Sciences (SHARPS)
  • University of California at Berkeley

Research output: Contribution to journalArticlepeer-review

Abstract

Metals usually fracture catastrophically at cryogenic temperatures and soften rapidly at high temperatures. This dilemma arises from the incompatibility of strengthening mechanisms across vast temperature regimes. Here, this work unveils a self-adaptive dislocation morphing mechanism in a model NbTaTi-based refractory high-entropy alloy (RHEA) that enables exceptional strength and ductility from 4 K to 1673 K. At cryogenic temperatures, dislocation kinking coupled with deformation twinning suppresses the ductile-to-brittle transition. At ambient conditions, the sequential activation of edge and screw dislocations sustains work hardening. At elevated temperatures, enhanced dislocation interactions generate jogs, multijunctions, and helical dislocations, promoting superplasticity up to 250%. This intrinsic, temperature-responsive evolution of dislocation modes offers a defect engineering strategy for designing RHEAs capable of enduring extreme environments.

Original languageEnglish
Article numbere2529140123
JournalProceedings of the National Academy of Sciences of the United States of America
Volume123
Issue number1
DOIs
StatePublished - 6 Jan 2026
Externally publishedYes

Keywords

  • dislocation mechanism
  • refractory high-entropy alloys
  • tensile properties
  • ultrawide temperature range

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