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Near-theoretical strength and deformation stabilization achieved via grain boundary segregation and nano-clustering of solutes

  • Chang Liu
  • , Jing Rao
  • , Zhongji Sun
  • , Wenjun Lu
  • , James P. Best
  • , Xuehan Li
  • , Wenzhen Xia
  • , Yilun Gong
  • , Ye Wei
  • , Bozhao Zhang
  • , Jun Ding
  • , Ge Wu
  • , En Ma
  • Max Planck Institute for Iron Research
  • Agency for Science, Technology and Research, Singapore
  • Southern University of Science and Technology
  • Xi'an Jiaotong University
  • Anhui University of Technology
  • University of Oxford

科研成果: 期刊稿件文章同行评审

59 引用 (Scopus)

摘要

Grain boundary hardening and precipitation hardening are important mechanisms for enhancing the strength of metals. Here, we show that these two effects can be amplified simultaneously in nanocrystalline compositionally complex alloys (CCAs), leading to near-theoretical strength and large deformability. We develop a model nanograined (TiZrNbHf)98Ni2 alloy via thermodynamic design. The Ni solutes, which has a large negative mixing enthalpy and different electronegativity to Ti, Zr, Nb and Hf, not only produce Ni-enriched local chemical inhomogeneities in the nanograins, but also segregate to grain boundaries. The resultant alloy achieves a 2.5 GPa yield strength, together with work hardening capability and large homogeneous deformability to 65% compressive strain. The local chemical inhomogeneities impede dislocation propagation and encourage dislocation multiplication to promote strain hardening. Meanwhile, Ni segregates to grain boundaries and enhances cohesion, suppressing the grain growth and grain boundary cracking found while deforming the reference TiZrNbHf alloy. Our alloy design strategy thus opens an avenue, via solute decoration at grain boundaries combined with local chemical inhomogeneities inside the grains, towards ultrahigh strength and large plasticity in nanostructured alloys.

源语言英语
文章编号9283
期刊Nature Communications
15
1
DOI
出版状态已出版 - 12月 2024

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