TY - JOUR
T1 - High impact resistance in a high-entropy alloy with thermally stable hierachical heterostructures
AU - Xu, Guowang
AU - Li, Guodong
AU - Tang, Peiwen
AU - Zhu, Qianyong
AU - Zhang, Linbing
AU - Zhang, Cheng
AU - Li, Zezhou
AU - Li, Yan
AU - Zheng, Ruixiao
AU - Ma, Chaoli
AU - Zhao, Shiteng
AU - Guo, Hongbo
N1 - Publisher Copyright:
© The Author(s), under exclusive licence to Springer Nature Limited 2026.
PY - 2026
Y1 - 2026
N2 - Face-centred cubic high-entropy alloys offer remarkable strain hardening and damage tolerance, yet moderate strength limits their performance under dynamic loading. While nanostructures can greatly improve strength, they are thermally unstable. Here we design a thermally stable three-dimensional-heterostructured (FeCoNi)86Al7Ti7 alloy. The hierarchical heterostructure, consisting of bimodal core–shell architecture, uniformly distributed nanoprecipitates and nanosized oxide particles (in the shell), remains stable up to 1,000 °C. The heterostructured alloy achieves high impact toughness, exhibiting 2.2-GPa yield strength and 1,100-MJ m−3 energy absorption density at a strain rate of 5 × 103 s−1. The massive martensitic transformation accommodates strain under impact loading, forms nano-martensite networks that strengthen the material, and sustains plasticity. Strain partitioning between core and shell provides potent back-stress hardening, while profuse interfaces facilitate martensite nucleation. The synergy of heterogeneous deformation, precipitation strengthening and thermally stabilized nanostructures establishes a robust design pathway for alloys with high strength and impact toughness across extreme conditions.
AB - Face-centred cubic high-entropy alloys offer remarkable strain hardening and damage tolerance, yet moderate strength limits their performance under dynamic loading. While nanostructures can greatly improve strength, they are thermally unstable. Here we design a thermally stable three-dimensional-heterostructured (FeCoNi)86Al7Ti7 alloy. The hierarchical heterostructure, consisting of bimodal core–shell architecture, uniformly distributed nanoprecipitates and nanosized oxide particles (in the shell), remains stable up to 1,000 °C. The heterostructured alloy achieves high impact toughness, exhibiting 2.2-GPa yield strength and 1,100-MJ m−3 energy absorption density at a strain rate of 5 × 103 s−1. The massive martensitic transformation accommodates strain under impact loading, forms nano-martensite networks that strengthen the material, and sustains plasticity. Strain partitioning between core and shell provides potent back-stress hardening, while profuse interfaces facilitate martensite nucleation. The synergy of heterogeneous deformation, precipitation strengthening and thermally stabilized nanostructures establishes a robust design pathway for alloys with high strength and impact toughness across extreme conditions.
UR - https://www.scopus.com/pages/publications/105041142142
U2 - 10.1038/s41563-026-02626-2
DO - 10.1038/s41563-026-02626-2
M3 - Article
AN - SCOPUS:105041142142
SN - 1476-1122
JO - Nature Materials
JF - Nature Materials
ER -