Stress enhanced self-diffusion of Copper on the Σ3 twin grain boundary was examined with molecular dynamics simulations. The presence of uniaxial tensile stress results in a significant reduction in activation energy for grain-boundary self-diffusion of magnitude 5 eV per unit strain. Using a theoretical model of point defect formation and diffusion, the functional dependence of the effective activation energy Q on uniaxial tensile strain ϵ is shown to be described by Q(ϵ)=Q0−E0V∗ϵ where E0 is the zero-temperature Young's modulus and V∗ is an effective activation volume. The simulation data agree well with this model and comparison between data and model suggests that V∗=0.6Ω where Ω is the atomic volume. V∗/Ω=0.6 is consistent with a vacancy-dominated diffusion mechanism.
@article{arxiv.cond-mat/0307065,
title = {Grain Boundary Diffusion in Copper under Tensile Stress},
author = {Kevin M. Crosby},
journal= {arXiv preprint arXiv:cond-mat/0307065},
year = {2007}
}