Ultrahigh-strength heterostructure eutectic high-entropy alloys with multiple strengthening mechanisms at cryogenic temperature

Eutectic high-entropy alloys (EHEAs) have attracted considerable attention owing to their remarkable strength-ductility synergy over a wide temperature range. However, the mechanisms governing their exceptional cryogenic mechanical performance remain insufficiently understood. Here, a heterogeneous dual-phase microstructure was successfully engineered in an Al 4.25 CoCrFe 5 Ni 12.25 V 1.5 EHEA through thermomechanical processing. An outstanding yield strength of ∼1.85 GPa, an excellent ultimate tensile strength of 2.06 GPa and a fracture elongation of 6.9% at 77 K were achieved. The high strength at 298 K primarily originates from grain-boundary, precipitation, and lattice friction strengthening. At 77 K, the reduced stacking fault energy promotes the formation of stacking faults and deformation twins. Consequently, the exceptional cryogenic mechanical performance is attributed to the synergistic contributions of these intrinsic and cryogenic-induced strengthening mechanisms. These findings offer guidance for the design of cryogenic structural materials.

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Publication Details

Journal
Intermetallics
Published
2026-09-25
DOI
https://doi.org/10.1016/j.intermet.2026.109576
Primary Topic
High Entropy Alloys Studies
Type
article
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article

Ultrahigh-strength heterostructure eutectic high-entropy alloys with multiple strengthening mechanisms at cryogenic temperature

Jingying Liu, Chenglong Zhou, Zhenfei Jiang, Xulong An et al.
Intermetallics
High Entropy Alloys Studies
article

Ultrahigh-strength heterostructure eutectic high-entropy alloys with multiple strengthening mechanisms at cryogenic temperature

Jingying Liu, Chenglong Zhou, Zhenfei Jiang, Xulong An, Wei Wei, Xiangkui Liu, Like Zhang, Huiqing Xu, Qun Li, Xintong Li
article en

Abstract

Eutectic high-entropy alloys (EHEAs) have attracted considerable attention owing to their remarkable strength-ductility synergy over a wide temperature range. However, the mechanisms governing their exceptional cryogenic mechanical performance remain insufficiently understood. Here, a heterogeneous dual-phase microstructure was successfully engineered in an Al 4.25 CoCrFe 5 Ni 12.25 V 1.5 EHEA through thermomechanical processing. An outstanding yield strength of ∼1.85 GPa, an excellent ultimate tensile strength of 2.06 GPa and a fracture elongation of 6.9% at 77 K were achieved. The high strength at 298 K primarily originates from grain-boundary, precipitation, and lattice friction strengthening. At 77 K, the reduced stacking fault energy promotes the formation of stacking faults and deformation twins. Consequently, the exceptional cryogenic mechanical performance is attributed to the synergistic contributions of these intrinsic and cryogenic-induced strengthening mechanisms. These findings offer guidance for the design of cryogenic structural materials.

IntermetallicsVol. 198
Shanghai Jiao Tong University (CN), Nanjing University of Science and Technology (CN), Changzhou University (CN)
Affordable and clean energy
Openalex Percentile: Top 21%
High Entropy Alloys Studies
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Ultrahigh-strength heterostructure eutectic high-entropy alloys with multiple strengthening mechanisms at cryogenic temperature — Jingying Liu, Chenglong Zhou, et al. · Intermetallics (2026) | TGRS Research Map | TGRS