School of Materials Engineering, Purdue University, West Lafayette, IN 47907, USA.
Nanoscale. 2018 Nov 29;10(46):22025-22034. doi: 10.1039/c8nr05139a.
Twin boundaries have been proven effective for strengthening metallic materials while maintaining plasticity. Al, however, has low twinning propensity due to its high stacking fault energy. Here we show, by using a small amount of Ni solutes, high-density twin boundaries and stacking faults in sputtered Al-Ni solid solution alloys. Density function theory calculations show that the Ni solute facilitates the formation of stacking faults and stabilizes nanotwins in Al-Ni solid solution alloys. In situ micropillar compression studies reveal a high flow stress (exceeding 1.7 GPa), comparable to high strength martensitic steels and Ni alloys. Furthermore, significant plasticity was observed in these nanotwinned Al-Ni alloy films due to the existence of high density twin boundaries and 9R phase.
孪晶界已被证明在提高金属材料强度的同时保持其塑性。然而,由于其较高的层错能,Al 的孪晶倾向较低。在这里,我们通过使用少量的 Ni 溶质,在溅射的 Al-Ni 固溶体合金中展示了高密度的孪晶界和位错。密度泛函理论计算表明,Ni 溶质有利于形成位错并稳定 Al-Ni 固溶体合金中的纳米孪晶。原位微柱压缩研究表明,这些纳米孪晶 Al-Ni 合金薄膜具有较高的流动应力(超过 1.7 GPa),可与高强度马氏体钢和镍基合金相媲美。此外,由于存在高密度的孪晶界和 9R 相,这些纳米孪晶 Al-Ni 合金薄膜表现出显著的塑性。