AI Article Synopsis

  • A new device was developed to perform in situ tensile tests on single crystal molybdenum nanowires within a transmission electron microscope, revealing significant super-plastic elongation of over 127% at near room temperature.
  • The study identified a unique "bubble-like effect" involving dislocation nucleation and annihilation, which contributes to the observed super-plastic behavior in body-centered cubic (bcc) Mo nanowires with optimized size and aspect ratios.
  • The atomic scale observations also indicated transitions from single crystal to poly-crystal structures, as well as a change from bcc to face-centered cubic phases, which aided in the plastic deformation process of the molybdenum nanowires at a small scale

Article Abstract

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.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4783708PMC
http://dx.doi.org/10.1038/srep22937DOI Listing

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