TY - JOUR
T1 - A “high-entropy + dilute” design strategy delivers a strong and ductile refractory alloy from 77 to 1,373 K
AU - An, Yaqiong
AU - Zhang, Bozhao
AU - Li, Wenxuan
AU - Li, Linze
AU - Xu, Yaqin
AU - Zhang, Cheng
AU - Ritchie, Robert O.
AU - Ding, Jun
N1 - Publisher Copyright:
Copyright © 2026 the Author(s). Published by PNAS.
PY - 2026/7/7
Y1 - 2026/7/7
N2 - Refractory high-entropy alloys (RHEAs) are ideal for extreme-temperature structural applications, but strengthening single-phase body-centered cubic (BCC) RHEAs typically compromises ductility, and systematic optimization across their vast compositional space remains challenging. In this work, we introduce a “high-entropy + dilute” design strategy that integrates concentrated high-entropy matrices with targeted dilute microalloying. We further refine this concept into an opposite-eigenstrain solute-pairing rule, in which solutes with opposite-sign local volumetric strains are combined to cooperatively amplify lattice distortion. Specifically, adding 1.5 at.% substitutional Re (local contraction) and 0.3 at.% interstitial B (local expansion) cooperatively amplifies local lattice distortion by approximately 20%, while maintaining a chemically homogeneous single-phase solid solution. This strategy raises the room-temperature yield strength by more than 34% while maintaining ductility, with the strength advantage sustained across an unusually wide temperature range from 77 to 1,373 K. Mechanistically, the amplified lattice distortion simultaneously modifies kink-pair-mediated screw glide and strengthens solute pinning of edge segments, thereby reducing screw-edge mobility mismatch and promoting coordinated dislocation multiplication and storage. These findings establish opposite-eigenstrain solute pairing as a mechanistically grounded microalloying strategy for strengthening single-phase BCC RHEAs across extreme temperatures.
AB - Refractory high-entropy alloys (RHEAs) are ideal for extreme-temperature structural applications, but strengthening single-phase body-centered cubic (BCC) RHEAs typically compromises ductility, and systematic optimization across their vast compositional space remains challenging. In this work, we introduce a “high-entropy + dilute” design strategy that integrates concentrated high-entropy matrices with targeted dilute microalloying. We further refine this concept into an opposite-eigenstrain solute-pairing rule, in which solutes with opposite-sign local volumetric strains are combined to cooperatively amplify lattice distortion. Specifically, adding 1.5 at.% substitutional Re (local contraction) and 0.3 at.% interstitial B (local expansion) cooperatively amplifies local lattice distortion by approximately 20%, while maintaining a chemically homogeneous single-phase solid solution. This strategy raises the room-temperature yield strength by more than 34% while maintaining ductility, with the strength advantage sustained across an unusually wide temperature range from 77 to 1,373 K. Mechanistically, the amplified lattice distortion simultaneously modifies kink-pair-mediated screw glide and strengthens solute pinning of edge segments, thereby reducing screw-edge mobility mismatch and promoting coordinated dislocation multiplication and storage. These findings establish opposite-eigenstrain solute pairing as a mechanistically grounded microalloying strategy for strengthening single-phase BCC RHEAs across extreme temperatures.
KW - dilute microalloying
KW - dislocation mobility
KW - local lattice distortion
KW - refractory high-entropy alloys
KW - solid-solution strengthening
UR - https://www.scopus.com/pages/publications/105043817752
U2 - 10.1073/pnas.2611876123
DO - 10.1073/pnas.2611876123
M3 - 文章
C2 - 42378279
AN - SCOPUS:105043817752
SN - 0027-8424
VL - 123
JO - Proceedings of the National Academy of Sciences of the United States of America
JF - Proceedings of the National Academy of Sciences of the United States of America
IS - 27
M1 - e2611876123
ER -