Atomistic calculations of interface elastic properties in noncoherent metallic bilayers
Author(s) -
Changwen Mi,
Sukky Jun,
Demitris Kouris,
Sung Youb Kim
Publication year - 2008
Publication title -
physical review b
Language(s) - English
Resource type - Journals
eISSN - 1538-4489
pISSN - 1098-0121
DOI - 10.1103/physrevb.77.075425
Subject(s) - materials science , interface (matter) , energy minimization , embedded atom model , interatomic potential , surface energy , elastic energy , atom (system on chip) , energy (signal processing) , metal , thermodynamics , molecular dynamics , composite material , computer science , computational chemistry , physics , chemistry , quantum mechanics , embedded system , capillary number , capillary action , metallurgy
The paper describes theoretical and computational studies associated with the interface elastic properties of noncoherent metallic bicrystals. Analytical forms of interface energy, interface stresses, and interface elastic constants are derived in terms of interatomic potential functions. Embedded-atom method potentials are then incorporated into the model to compute these excess thermodynamics variables, using energy minimization in a parallel computing environment. The proposed model is validated by calculating surface thermodynamic variables and comparing them with preexisting data. Next, the interface elastic properties of several fcc-fcc bicrystals are computed. The excess energies and stresses of interfaces are smaller than those on free surfaces of the same crystal orientations. In addition, no negative values of interface stresses are observed. Current results can be applied to various heterogeneous materials where interfaces assume a prominent role in the systems' mechanical behavior.open322
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