Lu Yan, Xiang Sisi, Xiao Lirong, Wang Lihua, Deng Qingsong, Zhang Ze, Han Xiaodong
Beijing Key Lab and Institute of Microstructure and Properties of Advanced Materials, Beijing University of Technology, Beijing, 100124, China.
Department of Materials Science, State Key Lab of Si Materials, Zhejiang University, Hangzhou, Zhejiang, 310058, China.
Sci Rep. 2016 Mar 9;6:22937. doi: 10.1038/srep22937.
With our recently developed deformation device, the in situ tensile tests of single crystal molybdenum nanowires with various size and aspect ratio were conducted inside a transmission electron microscope (TEM). We report an unusual ambient temperature (close to room temperature) super-plastic elongation above 127% on single crystal body-centred cubic (bcc) molybdenum nanowires with an optimized aspect ratio and size. A novel dislocation "bubble-like-effect" was uncovered for leading to the homogeneous, large and super-plastic elongation strain in the bcc Mo nanowires. The dislocation bubble-like-effect refers to the process of dislocation nucleation and annihilation, which likes the nucleation and annihilation process of the water bubbles. A significant plastic deformation dependence on the sample's aspect ratio and size was revealed. The atomic scale TEM observations also demonstrated that a single crystal to poly-crystal transition and a bcc to face-centred cubic phase transformation took place, which assisted the plastic deformation of Mo in small scale.
利用我们最近开发的变形装置,在透射电子显微镜(TEM)内对具有不同尺寸和纵横比的单晶钼纳米线进行了原位拉伸试验。我们报道了在具有优化纵横比和尺寸的体心立方(bcc)单晶钼纳米线上,在接近室温的环境温度下出现了超过127%的异常超塑性伸长。发现了一种新颖的位错“气泡状效应”,它导致了bcc钼纳米线中均匀、大且超塑性的伸长应变。位错气泡状效应指的是位错的形核与湮灭过程,类似于水泡的形核与湮灭过程。揭示了塑性变形对样品纵横比和尺寸的显著依赖性。原子尺度的TEM观察还表明发生了单晶到多晶的转变以及bcc到面心立方的相变,这有助于钼在小尺度下的塑性变形。