Gu Lei, Zhao Yonghao, Li Yong, Hou Rui, Liang Fei, Zhang Ruisheng, Wu Yinxing, Fan Yong, Liang Ningning, Zhou Bing, Chen Yang, Sha Gang, Chen Guang, Wang Yandong, Chen Xiang
Nano and Heterogeneous Materials Center, School of Materials Science and Engineering, Nanjing University of Science and Technology, Nanjing 210094, China.
School of Materials Science and Engineering, Hohai University, Changzhou 213200, China.
Sci Adv. 2024 May 31;10(22):eadn7553. doi: 10.1126/sciadv.adn7553. Epub 2024 May 29.
Long-range ordered phases in most high-entropy and medium-entropy alloys (HEAs/MEAs) exhibit poor ductility, stemming from their brittle nature of complex crystal structure with specific bonding state. Here, we propose a design strategy to severalfold strengthen a single-phase face-centered cubic (fcc) NiCoFeV MEA by introducing trigonal κ and cubic L1 intermetallic phases via hierarchical ordering. The tri-phase MEA has an ultrahigh tensile strength exceeding 1.6 GPa and an outstanding ductility of 30% at room temperature, which surpasses the strength-ductility synergy of most reported HEAs/MEAs. The simultaneous activation of unusual dislocation multiple slip and stacking faults (SFs) in the κ phase, along with nano-SF networks, Lomer-Cottrell locks, and high-density dislocations in the coupled L1 and fcc phases, contributes to enhanced strain hardening and excellent ductility. This work offers a promising prototype to design super-strong and ductile structural materials by harnessing the hierarchical ordered phases.
大多数高熵和中熵合金(HEAs/MEAs)中的长程有序相表现出较差的延展性,这源于其具有特定键合状态的复杂晶体结构的脆性本质。在此,我们提出一种设计策略,通过分级有序引入三角κ相和立方L1金属间相,将单相面心立方(fcc)NiCoFeV中熵合金的强度提高数倍。这种三相中熵合金具有超过1.6 GPa的超高拉伸强度以及室温下30%的出色延展性,超越了大多数已报道的高熵合金/中熵合金的强度-延展性协同性能。κ相中异常位错多滑移和堆垛层错(SFs)的同时激活,以及耦合的L1相和fcc相中纳米SF网络、洛默-科特雷尔位错锁和高密度位错,有助于增强应变硬化和实现优异的延展性。这项工作为通过利用分级有序相来设计超强韧结构材料提供了一个有前景的原型。