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Doubled strength and ductility via maraging effect and dynamic precipitate transformation in ultrastrong medium-entropy alloy SCIE SCOPUS

Title
Doubled strength and ductility via maraging effect and dynamic precipitate transformation in ultrastrong medium-entropy alloy
Authors
Chung HyunChoi Won SeokJun HosunDo Hyeon-SeokLee Byeong-JooChoi Pyuck-PaHan Heung NamKo Won-SeokSohn Seok Su
Date Issued
2023-01
Publisher
Nature Publishing Group
Abstract
Demands for ultrahigh strength in structural materials have been steadily increasing in response to environmental issues. Maraging alloys offer a high tensile strength and fracture toughness through a reduction of lattice defects and formation of intermetallic precipitates. The semi-coherent precipitates are crucial for exhibiting ultrahigh strength; however, they still result in limited work hardening and uniform ductility. Here, we demonstrate a strategy involving deformable semi-coherent precipitates and their dynamic phase transformation based on a narrow stability gap between two kinds of ordered phases. In a model medium-entropy alloy, the matrix precipitate acts as a dislocation barrier and also dislocation glide media; the grain-boundary precipitate further contributes to a significant work-hardening via dynamic precipitate transformation into the type of matrix precipitate. This combination results in a twofold enhancement of strength and uniform ductility, thus suggesting a promising alloy design concept for enhanced mechanical properties in developing various ultrastrong metallic materials. Commercial maraging alloys provide high strength and toughness by traditional precipitation strengthening mechanism. Here, the authors demonstrate a new strategy involving deformable precipitates and their dynamic phase transformation resulting in a twofold enhancement of strength and ductility.
URI
https://oasis.postech.ac.kr/handle/2014.oak/122856
DOI
10.1038/s41467-023-35863-z
Article Type
Article
Citation
Nature Communications, vol. 14, no. 1, 2023-01
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이병주LEE, BYEONG JOO
Dept of Materials Science & Enginrg
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