材料科学
脆性
延展性(地球科学)
脆化
合金
可塑性
延伸率
变形(气象学)
变形机理
冶金
复合材料
产量(工程)
纳米晶材料
结构材料
脆性断裂
纳米晶
极限抗拉强度
作者
Z. C. Li,Xiao‐Tong Li,Zhaoqi Chen,Yushan Geng,Hao Gong,Sijia Hu,Wenli Song,Wanshun Xia,Chuanzheng Li,Linfa Peng,Yue Fan,Guan Pz,Bo Zhang,Weihua Wang,Yong Yang
标识
DOI:10.1002/advs.202518465
摘要
Conventional wisdom holds that hard grain-boundary (GB) precipitates embrittle structural alloys by acting as crack initiation sites. In this work, we overturn this paradigm through atomic-scale interfacial engineering, transforming brittle GB phases into ductility pathways in a machine-learning identified model complex concentrated alloy. By precisely tailoring thermomechanical processing, we fabricated compositionally and structurally graded interfaces (GIs) that enable sequential plasticity activation and coordinated deformation across GBs. This interfacial architecture converts an intrinsically brittle multi-phase alloy into a ductile material, achieving an exceptional yield strength of ∼1.2 GPa with a total elongation of ∼20%. The achieved strength-ductility synergy, realized via interfacial plasticity programming, establishes a generalizable materials design strategy to overcome the persistent challenge of GB embrittlement in precipitation-strengthened alloys.
科研通智能强力驱动
Strongly Powered by AbleSci AI