Nanomaterials (Apr 2022)

Revisiting the Rate-Dependent Mechanical Response of Typical Silicon Structures via Molecular Dynamics

  • Yi Liu,
  • Wei Wan,
  • Quan Li,
  • Zhenkang Xiong,
  • Changxin Tang,
  • Lang Zhou

DOI
https://doi.org/10.3390/nano12071203
Journal volume & issue
Vol. 12, no. 7
p. 1203

Abstract

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Strain rate is a critical parameter in the mechanical application of nano-devices. A comparative atomistic study on both perfect monocrystalline silicon crystal and silicon nanowire was performed to investigate how the strain rate affects the mechanical response of these silicon structures. Using a rate response model, the strain rate sensitivity and the critical strain rate of two structures were given. The rate-dependent dislocation activities in the fracture process were also discussed, from which the dislocation nucleation and motion were found to play an important role in the low strain rate deformations. Finally, through the comparison of five equivalent stresses, the von Mises stress was verified as a robust yield criterion of the two silicon structures under the strain rate effects.

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