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Self-Learning Kinetic Monte Carlo Simulations of Al Diffusion in Mg

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arxiv 1601.00988 v1 pith:EUURLE3X submitted 2016-01-05 cond-mat.mtrl-sci

Self-Learning Kinetic Monte Carlo Simulations of Al Diffusion in Mg

classification cond-mat.mtrl-sci
keywords atomsimulationsslkmcactivationbarriersdiffusionlatticemethod
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Vacancy-mediated diffusion of an Al atom in pure Mg matrix is studied using the atomistic, on-lattice self-learning kinetic Monte Carlo (SLKMC) method. Activation barriers for vacancy-Mg and vacancy-Al atom exchange processes are calculated on-the-fly using the climbing image nudged-elastic band method and binary Mg-Al modified embedded-atom method interatomic potential. Diffusivities of an Al atom obtained from SLKMC simulations show the same behavior as observed in experimental and theoretical studies available in the literature, that is, Al atom diffuses faster within the basal plane than along the c-axis. Although, the effective activation barriers for Al-atom diffusion from SLKMC simulations are close to experimental and theoretical values, the effective prefactors are lower than those obtained from experiments. We present all the possible vacancy-Mg and vacancy-Al atom exchange processes and their activation barriers identified in SLKMC simulations. A simple mapping scheme to map an HCP lattice on to a simple cubic lattice is described, which enables the simulation of HCP lattice using on-lattice framework. We also present the pattern recognition scheme which is used in SLKMC simulations to identify the local Al atom configuration around a vacancy.

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