TY - JOUR
T1 - Optimizing the strength-ductility balance in Co-free dual-phase compositionally complex alloys via nacre-like microstructures and hierarchical precipitates
AU - Xie, Chaoyu
AU - Gao, Qingwei
AU - Cui, Zhenlu
AU - Wu, Jiafeng
AU - Chen, Zhiwei
AU - Liu, Qi
AU - Gong, Jianhong
AU - Han, Xiaoliang
AU - Sun, Honggang
AU - Qiao, Jichao
AU - Wang, Hui
AU - Cao, Chongde
AU - Park, Hae Jin
AU - Hong, Sung Hwan
AU - Kim, Ki Buem
AU - Umetsu, Rie Yamauchi
AU - Yang, Xiaoming
AU - Wang, Ruixin
AU - Song, Kaikai
AU - Eckert, Jürgen
N1 - Publisher Copyright:
© Science China Press 2026.
PY - 2026/8
Y1 - 2026/8
N2 - Developing Co-free compositionally complex alloys (CCAs) with exceptional strength-ductility balance is essential for advancing high-performance structural materials, addressing the economic and resource limitations of Co-bearing counterparts. This study explores novel Co-free dual-phase (FCC+BCC) Fe30Cr30Ni30Al7Ti3 CCAs featuring bio-inspired nacre-like microstructures to achieve enhanced mechanical performance. Within these architectures, FCC- and BCC-dominated regions are aligned along the rolling direction, forming a dual-phase matrix with embedded multi-scale hierarchical precipitate ensembles. The FCC-dominated regions exhibit a small quantity of unevenly distributed L12 nanoprecipitates, while submicron ordered B2 and L21 co-precipitates at grain boundaries create complex triple interfaces, effectively impeding crack propagation. Specifically, the BCC-dominated regions exhibit a complex arrangement of nanoscale B2 nanoprecipitates, submicron L21 precipitates, and microscale L12-strengthened FCC phases, establishing a unique and sophisticated microstructural framework. This innovative design achieves an exceptional ultimate tensile strength of ∼1.63 GPa and an elongation of ∼15.3% even after high-temperature annealing at 1273 K, surpassing the conventional strength-ductility trade-off and outperforming other Co-free CCAs under comparable conditions. The superior mechanical properties are attributed to the synergistic effects of the grain-refined lamellar FCC+BCC dual-phase framework with multi-scale precipitates, which collectively provide structural stability, precipitation strengthening, and hetero-deformation-induced strengthening. This work introduces a high-performance Co-free CCA and offers a strategic approach for designing advanced CCAs through bio-inspired hierarchical microstructures.
AB - Developing Co-free compositionally complex alloys (CCAs) with exceptional strength-ductility balance is essential for advancing high-performance structural materials, addressing the economic and resource limitations of Co-bearing counterparts. This study explores novel Co-free dual-phase (FCC+BCC) Fe30Cr30Ni30Al7Ti3 CCAs featuring bio-inspired nacre-like microstructures to achieve enhanced mechanical performance. Within these architectures, FCC- and BCC-dominated regions are aligned along the rolling direction, forming a dual-phase matrix with embedded multi-scale hierarchical precipitate ensembles. The FCC-dominated regions exhibit a small quantity of unevenly distributed L12 nanoprecipitates, while submicron ordered B2 and L21 co-precipitates at grain boundaries create complex triple interfaces, effectively impeding crack propagation. Specifically, the BCC-dominated regions exhibit a complex arrangement of nanoscale B2 nanoprecipitates, submicron L21 precipitates, and microscale L12-strengthened FCC phases, establishing a unique and sophisticated microstructural framework. This innovative design achieves an exceptional ultimate tensile strength of ∼1.63 GPa and an elongation of ∼15.3% even after high-temperature annealing at 1273 K, surpassing the conventional strength-ductility trade-off and outperforming other Co-free CCAs under comparable conditions. The superior mechanical properties are attributed to the synergistic effects of the grain-refined lamellar FCC+BCC dual-phase framework with multi-scale precipitates, which collectively provide structural stability, precipitation strengthening, and hetero-deformation-induced strengthening. This work introduces a high-performance Co-free CCA and offers a strategic approach for designing advanced CCAs through bio-inspired hierarchical microstructures.
KW - bio-inspired microstructures
KW - compositionally complex alloys
KW - mechanical properties
KW - multiple precipitates
UR - https://www.scopus.com/pages/publications/105045108809
U2 - 10.1007/s11431-025-3301-7
DO - 10.1007/s11431-025-3301-7
M3 - 文章
AN - SCOPUS:105045108809
SN - 1674-7321
VL - 69
JO - Science China Technological Sciences
JF - Science China Technological Sciences
IS - 8
M1 - 1820201
ER -