4.7 Article

Temperature-dependent deformation in silver-particle-covered copper nanowires by molecular dynamics simulation

Journal

JOURNAL OF MATERIOMICS
Volume 8, Issue 1, Pages 68-78

Publisher

ELSEVIER
DOI: 10.1016/j.jmat.2021.05.005

Keywords

Nanowires; Deformation; Cu-Ag; Nano particle; Dislocation

Funding

  1. National Natural Science Foundation of China [51901184, 21975204]
  2. 111 Project of China [B08040]
  3. Natural Science Foundation of Shannxi Province [2021JM-061]
  4. QMUL ITS Research
  5. China Scholarship Council (CSC) [201806290286]
  6. Grant Agency of the Slovak Academy of Sciences [2/0038/20]

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This study investigates Cu nanowires covered by Ag particles using molecular dynamics simulation. The results reveal different deformation mechanisms depending on the size of Ag particles in the Cu-Ag core-particle system. The mechanical properties of the system are influenced by temperature, particularly for particles larger than 2.0 nm.
Cu nanowires covered by Ag particles is studied for potential applications in the next-generation microelectronics. To date, the deformation mechanism in the Cu-Ag core-particle is not clear. Here, molecular dynamics simulation is used to describe the Cu-Ag core-particle system. The results show that the equilibrium structure of Ag particles is reconstructed, when the particle <= 1.0 nm. At low temperature (1 K) indicate that three different deformation processes take part in the core-particle structure, depending on the size of Ag particles. When the particle diameter <2.0 nm, the prevailing deformation mechanism is the emission of dislocations from the Cu surface. For the particle diameters ranging from 3.0 to 6.0 nm, the emission of misfit dislocations from the Ag-Cu interface is the dominant deformation mechanism. If the Ag particle >= 6.0 nm, the deformation mechanism can be characterized by the slip band, consisting of the dislocations and amorphous atoms. For elevated temperatures (2-400 K), the mechanical properties of the Ag-Cu core-shell system are nearly independent of temperature, whereas the structure with particles larger than 2.0 nm showed a strong dependence of its mechanical properties on temperature. Based on the results, the diameter-temperature plastic deformation map is proposed. (C) 2021 The Chinese Ceramic Society. Production and hosting by Elsevier B.V.

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