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Atomic radius dependence of impurity diffusion coefficients in liquid Pb.
Masato Shiinoki1,2, Keita Kawashima3, Yoshihiro Kobayashi3
1Department of Applied Mechanics and Aerospace Engineering, Faculty of Science and Engineering, Waseda University, Okubo 3-4-1 Shinjuku-ku, Tokyo 169-8555, Japan.
This study validates a formula for impurity diffusion coefficients in liquid metals. Effective atomic radii from molecular dynamics simulations improved prediction accuracy, reducing errors to 2.4%.
Area of Science:
- Materials Science
- Physical Chemistry
- Computational Materials Science
Background:
- Impurity diffusion coefficients are crucial for understanding liquid metal behavior.
- Existing prediction formulas often lack accuracy due to simplified atomic radius considerations.
Purpose of the Study:
- To verify a prediction formula for impurity diffusion coefficients.
- To investigate the use of effective atomic radii derived from molecular dynamics simulations for improved predictions.
Main Methods:
- Shear cell experiments were conducted for Pb-Cu and Pb-Sn systems at 773 K.
- Molecular dynamics simulations using neural network potentials were performed for various Pb-solute systems.
- Effective atomic radii were calculated from partial pair distribution functions.
Main Results:
- Effective atomic radii derived from simulations differed from Goldschmidt radii, reflecting liquid-state thermodynamic interactions.
- Radii decreased for high-affinity solutes (Cu, Ag, Sn) and increased for repulsive solutes (Ga) in Pb.
- The prediction formula incorporating these effective radii achieved high accuracy, with a maximum relative error of 2.4%.
Conclusions:
- The effective atomic radius calculated from partial pair distribution functions via molecular dynamics simulations is a reliable parameter for impurity diffusion predictions.
- The validated formula offers a more accurate method for predicting impurity diffusion coefficients in liquid metals.
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