Strong, ductile, and hierarchical hetero-lamellar-structured alloys through microstructural inheritance and refinement

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

1 Scopus Citations
View graph of relations

Author(s)

  • Peijian Shi (Co-first Author)
  • Yi Li (Co-first Author)
  • Zhi Li (Co-first Author)
  • Xin Jiang
  • Yi Qin
  • Yifan Lin
  • Jingran Huang
  • Bodong Tan
  • Yinan Wang
  • Tongqi Wen
  • Beilin Ye
  • Chunyan Ling
  • Junhua Luan
  • Zhe Shen
  • Biao Ding
  • Qiang Li
  • Tianxiang Zheng
  • Weili Ren
  • Tianlong Zhang
  • Yunbo Zhong
  • Huajian Gao

Detail(s)

Original languageEnglish
Article numbere2409317121
Journal / PublicationProceedings of the National Academy of Sciences of the United States of America
Volume122
Issue number2
Online published8 Jan 2025
Publication statusPublished - 14 Jan 2025

Link(s)

Abstract

The strength−ductility trade-off exists ubiquitously, especially in brittle intermetallic-containing multiple principal element alloys (MPEAs), where the intermetallic phases often induce premature failure leading to severe ductility reduction. Hierarchical heterogeneities represent a promising microstructural solution to achieve simultaneous strength−ductility enhancement. However, it remains fundamentally challenging to tailor hierarchical heterostructures using conventional methods, which often rely on costly and time-consuming processing. Here, we report a multiscale microstructural inheritance and refinement strategy to process “structural hierarchy precursors” in as-cast heterogeneous Al0.7CoCrFeNi MPEAs, which lead directly to a hierarchical hetero-lamellar structure (HLS) after simple rolling and annealing. Interestingly, it takes only 10 min of annealing time, two orders of magnitude less than that required to render the state-of-the-art properties during conventional processing of Al0.7CoCrFeNi, for us to achieve record-high strength−ductility combinations via the hierarchical HLS design that sequentially stimulates multiple unusual deformation and reinforcement mechanisms. In particular, the HLS-enabled high hetero-deformation-induced (HDI) internal stress triggers profuse <111>-type dislocations on over five independent slip systems in the supposedly brittle intermetallic phase and activates extensive stacking faults (SFs) and nanotwinning in the adjoining soft phase with a rather high SF energy. These unexpected, dynamically reinforcing hetero-deformation mechanisms across multiple length scales facilitate high sustained HDI strain hardening, along with a salient microcrack-mediated extrinsic ductilization effect, suggesting that the proposed microstructural inheritance and refinement strategy provides an efficient, fast, and low-cost approach to overcome the strength−ductility trade-off in a broad range of structural materials. © 2025 the Author(s). Published by PNAS.

Research Area(s)

  • hierarchical hetero-lamellar structure, high-entropy alloy, multiple previously inaccessible micromechanisms, strong HDI stress, superior strength−ductility synergy

Citation Format(s)

Strong, ductile, and hierarchical hetero-lamellar-structured alloys through microstructural inheritance and refinement. / Shi, Peijian (Co-first Author); Li, Yi (Co-first Author); Li, Zhi (Co-first Author) et al.
In: Proceedings of the National Academy of Sciences of the United States of America, Vol. 122, No. 2, e2409317121, 14.01.2025.

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Download Statistics

No data available