Achieving high strength and toughness in microlaminated duplex medium entropy alloys via dual B2 nanoprecipitates

S. H. Gao, J. Y. Zhang, H. Wang, S. Y. Liu, J. Kuang, J. Li, G. Liu, J. Sun

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摘要

Heterogeneously laminated duplex structures offer a promising approach to overcoming the strength–ductility trade-off in alloys. However, this often comes at the expense of fracture toughness—particularly at gigapascal-level yield strengths—due to strain incompatibilities at interfaces. In this work, we develop a Fe-based medium entropy alloy (Fe-MEA) featuring ordered body-centered cubic (B2) nanoprecipitates embedded within laminated face-centered cubic (FCC) and body-centered cubic (BCC) phases. These engineered interfaces act as prolific, stable, and long-lasting dislocation sources, substantially improving toughness, while simultaneously serving as strong dislocation barriers to enhance strength. The dual-nanoprecipitate-reinforced Fe-MEA demonstrates an exceptional combination of properties: a yield strength of ∼1350 MPa, ductility of ∼18 %, and fracture toughness of ∼166 MPa·m0.5. Dynamic grain refinement and crack branching further contribute to enhanced energy absorption. Although showcased in Fe-MEAs, this structural design strategy offers a promising pathway for developing other strong and ductile alloys— such as complex multi-element alloys—with superior fracture resistance.

源语言英语
文章编号116837
期刊Scripta Materialia
267
DOI
出版状态已出版 - 1 10月 2025
已对外发布

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