An in situ ambient and cryogenic transmission electron microscopy study of the effects of temperature on dislocation behavior in CrCoNi-based high-entropy alloys with low stacking-fault energy

材料科学 层错能 凝聚态物理 晶体孪晶 叠加断层 堆积 高熵合金 位错 打滑(空气动力学) 微观结构 合金 复合材料 热力学 化学 物理 有机化学
作者
Yan Fang,Yujie Chen,Bing Chen,Suzhi Li,Bernd Gludovatz,Eun Soo Park,Guan Sheng,Robert O. Ritchie,Qian Yu
出处
期刊:Applied Physics Letters [American Institute of Physics]
卷期号:119 (26) 被引量:14
标识
DOI:10.1063/5.0069086
摘要

Temperature is known to affect deformation mechanisms in metallic alloys. As temperature decreases, the stacking-fault energy in many face-centered cubic (fcc) alloys decreases, resulting in a change of deformation mode from dislocation slip to deformation twinning. Such an impact of temperature can be more complex in compositionally heterogeneous microstructures that exhibit, for example, local concentration fluctuation such as that in multi-principal element alloys. In this work, we compare the dislocation behavior and mechanical properties of a fcc Cr20Mn10Fe30Co30Ni10 high-entropy alloy at ambient and liquid-nitrogen temperatures. We find that a network of stacking faults is formed by uniformly extended dislocations at ambient temperatures with low stacking-fault energy, whereas at lower temperatures, uneven dissociation of dislocations becomes significant, which results in severe dislocation pile-ups together with their pronounced entanglement. Our findings indicate that as the stacking-fault energy decreases with decreasing temperature, the heterogeneity of the distribution of elements becomes more dominant in tuning the local variation of lattice resistance. As a result, the change in dislocation behavior at low temperatures strongly affects microstructural evolution and consequently leads to significantly more pronounced work hardening.
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