合金
降水
材料科学
边界(拓扑)
冶金
物理
气象学
数学分析
数学
作者
Shuai Dai,Yunzhu Shi,Junyang He,Jie Hou,Fei Zhang,Zhenggang Wu,Chao Ma,Shaofei Liu,Alexander Schökel,Yan Ma,Shaolou Wei,Claudio Pistidda,Zhifeng Lei,Hong‐Hui Wu
出处
期刊:PubMed
日期:2025-07-18
卷期号:11 (29): eadu7566-eadu7566
标识
DOI:10.1126/sciadv.adu7566
摘要
Coherent precipitation-hardened alloys often struggle to achieve both ultrahigh strength and exceptional ductility due to their limited resistance to dislocation motion and vulnerability to glide plane softening. Here, we tackle these challenges by introducing multicomponent precipitates with much increased antiphase boundary (APB) energy. In a model Ni3Al-type (L12) precipitation-hardened face-centered cubic (FCC) NiCo-based alloy, we incorporate multiple elements at the Al sublattice sites within the precipitates, reducing antisite defects and enhancing ordering degree. This process yields multicomponent precipitates with an ultrahigh APB energy (~308 ± 14 millijoules per square meter), which notably strengthens the alloy. Moreover, the exceptionally high APB energy transforms the deformation mechanism from dislocation shearing to stacking fault shearing, thereby avoiding glide plane softening. These result in a tensile yield strength of 1616 ± 9 megapascals, an ultimate tensile strength of 2155 ± 22 megapascals, and a uniform elongation of 10.1 ± 0.3% for the alloy.
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