材料科学
层错能
合金
延展性(地球科学)
铝
相(物质)
叠加断层
硬化(计算)
纳米尺度
材料的强化机理
复合材料
冶金
极限抗拉强度
位错
纳米技术
蠕动
有机化学
化学
图层(电子)
作者
Qiang Li,Sichuang Xue,Jian Wang,Shuai Shao,Anthony Herman Fu-Hao Kwong,Adenike M. Giwa,Zhe Fan,Yue Liu,Zhimin Qi,Jie Ding,Han Wang,Julia R. Greer,Haiyan Wang,X. Zhang
标识
DOI:10.1002/adma.201704629
摘要
Light-weight aluminum (Al) alloys have widespread applications. However, most Al alloys have inherently low mechanical strength. Nanotwins can induce high strength and ductility in metallic materials. Yet, introducing high-density growth twins into Al remains difficult due to its ultrahigh stacking-fault energy. In this study, it is shown that incorporating merely several atomic percent of Fe solutes into Al enables the formation of nanotwinned (nt) columnar grains with high-density 9R phase in Al(Fe) solid solutions. The nt Al-Fe alloy coatings reach a maximum hardness of ≈5.5 GPa, one of the strongest binary Al alloys ever created. In situ uniaxial compressions show that the nt Al-Fe alloys populated with 9R phase have flow stress exceeding 1.5 GPa, comparable to high-strength steels. Molecular dynamics simulations reveal that high strength and hardening ability of Al-Fe alloys arise mainly from the high-density 9R phase and nanoscale grain sizes.
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