非晶态金属
材料科学
延展性(地球科学)
极限抗拉强度
应变硬化指数
复合材料
硬化(计算)
剪切(地质)
可塑性
剪切带
无定形固体
软化
合金
冶金
结晶学
蠕动
图层(电子)
化学
作者
Zhibo Zhang,Shan Zhang,Qing Wang,Anliang Lu,Zhaoqi Chen,Ziyin Yang,Junhua Luan,Rui Su,Pengfei Guan,Yong Yang
标识
DOI:10.1073/pnas.2400200121
摘要
Traditional metallic glasses (MGs), based on one or two principal elements, are notoriously known for their lack of tensile ductility at room temperature. Here, we developed a multiprincipal element MG (MPEMG), which exhibits a gigapascal yield strength, significant strain hardening that almost doubles its yield strength, and 2% uniform tensile ductility at room temperature. These remarkable properties stem from the heterogeneous amorphous structure of our MPEMG, which is composed of atoms with significant size mismatch but similar atomic fractions. In sharp contrast to traditional MGs, shear banding in our glass triggers local elemental segregation and subsequent ordering, which transforms shear softening to hardening, hence resulting in shear-band self-halting and extensive plastic flows. Our findings reveal a promising pathway to design stronger, more ductile glasses that can be applied in a wide range of technological fields.
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