Elastic constants of stressed and unstressed materials in the phase field crystal model
Zi-Le Wang, Zhi-Feng Huang, and Zhirong Liu

TL;DR
This paper presents a comprehensive continuum field modeling approach to accurately calculate elastic constants of stressed and unstressed materials within the phase field crystal framework, accounting for various physical factors.
Contribution
It introduces a thermodynamics-based formulation that incorporates pre-existing stress and all relevant lattice quantities into elastic constant calculations in PFC models.
Findings
Results align with experimental data for bcc Fe.
Method accurately captures elastic response of liquids and solids.
Improved agreement with molecular dynamics simulations.
Abstract
A general procedure to investigate the elastic response and calculate the elastic constants of stressed and unstressed materials through continuum field modeling, particularly the phase field crystal (PFC) models, is presented. It is found that for a complete description of system response to elastic deformation, the variations of all the quantities of lattice wave vectors, their density amplitudes (including the corresponding anisotropic variation and degeneracy breaking), the average atomic density, and system volume should be incorporated. The quantitative and qualitative results of elastic constant calculations highly depend on the physical interpretation of the density field used in the model, and also importantly, on the intrinsic pressure that usually pre-exists in the model system. A formulation based on thermodynamics is constructed to account for the effects caused by constant…
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