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Self-energy and interaction energy of stacking fault in fcc metals calculated by embedded-atom metho Self-energy and interaction energy of stacking fault in fcc metals calculated by embedded-atom metho

Self-energy and interaction energy of stacking fault in fcc metals calculated by embedded-atom metho

  • 期刊名字:中國(guó)科學(xué)E輯(英文版)
  • 文件大?。?/li>
  • 論文作者:HE Gang,RONG Yonghua,XU Zuyao
  • 作者單位:School of Materials Science and Engineering
  • 更新時(shí)間:2022-11-28
  • 下載次數(shù):
論文簡(jiǎn)介

The stacking fault energies of five fcc metals (Cu, Ag, Au, Ni and Al) with various quantivalences have been calculated by embedded-atom method (EAM). It indicated that the stacking fault energy is mainly determined by the metallic bond-energy and the lattice constant. Thus, monovalent fcc metals should have different stacking fault energies, contrary to Attree's conclusion. The interaction energy between stacking faults one {111} layer apart in a fcc metal is found to be 1/40-1/250 of its self-energy, while it becomes zero when the two stacking faults are two layers apart. The twin energy is just half of the energy of intrinsic stacking fault energy without the consideration of lattice relax-ation and the energy of a single intrinsic stacking fault is almost the same as that of extrinsic stacking fault, which are consistent with the results from the calculation of Lennard-Jones force between atoms, but differ from Attree's result.

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