| Literature DB >> 32839590 |
Shaolou Wei1, Sang Jun Kim2, Jiyun Kang1, Yong Zhang3, Yongjie Zhang4, Tadashi Furuhara4, Eun Soo Park2, Cemal Cem Tasan5.
Abstract
Metallic alloys containing multiple principal alloying elements have created a growing interest in exploring the property limits of metals and understanding the underlying physical mechanisms. Refractory high-entropy alloys have drawn particular attention due to their high melting points and excellent softening resistance, which are the two key requirements for high-temperature applications. Their compositional space is immense even after considering cost and recyclability restrictions, providing abundant design opportunities. However, refractory high-entropy alloys often exhibit apparent brittleness and oxidation susceptibility, which remain important challenges for their processing and application. Here, utilizing natural-mixing characteristics among refractory elements, we designed a Ti38V15Nb23Hf24 refractory high-entropy alloy that exhibits >20% tensile ductility in the as-cast state, and physicochemical stability at high temperatures. Exploring the underlying deformation mechanisms across multiple length scales, we observe that a rare β'-phase plays an intriguing role in the mechanical response of this alloy. These results reveal the effectiveness of natural-mixing tendencies in expediting high-entropy alloy discovery.Entities:
Year: 2020 PMID: 32839590 DOI: 10.1038/s41563-020-0750-4
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841